US10451401B2 - Displacement detecting device with controlled heat generation - Google Patents
Displacement detecting device with controlled heat generation Download PDFInfo
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- US10451401B2 US10451401B2 US15/979,645 US201815979645A US10451401B2 US 10451401 B2 US10451401 B2 US 10451401B2 US 201815979645 A US201815979645 A US 201815979645A US 10451401 B2 US10451401 B2 US 10451401B2
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01B—MEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
- G01B9/00—Measuring instruments characterised by the use of optical techniques
- G01B9/02—Interferometers
- G01B9/02041—Interferometers characterised by particular imaging or detection techniques
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01B—MEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
- G01B9/00—Measuring instruments characterised by the use of optical techniques
- G01B9/02—Interferometers
- G01B9/02001—Interferometers characterised by controlling or generating intrinsic radiation properties
- G01B9/02011—Interferometers characterised by controlling or generating intrinsic radiation properties using temporal polarization variation
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01B—MEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
- G01B9/00—Measuring instruments characterised by the use of optical techniques
- G01B9/02—Interferometers
- G01B9/02015—Interferometers characterised by the beam path configuration
- G01B9/02017—Interferometers characterised by the beam path configuration with multiple interactions between the target object and light beams, e.g. beam reflections occurring from different locations
- G01B9/02018—Multipass interferometers, e.g. double-pass
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01B—MEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
- G01B9/00—Measuring instruments characterised by the use of optical techniques
- G01B9/02—Interferometers
- G01B9/02015—Interferometers characterised by the beam path configuration
- G01B9/02017—Interferometers characterised by the beam path configuration with multiple interactions between the target object and light beams, e.g. beam reflections occurring from different locations
- G01B9/02019—Interferometers characterised by the beam path configuration with multiple interactions between the target object and light beams, e.g. beam reflections occurring from different locations contacting different points on same face of object
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01B—MEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
- G01B9/00—Measuring instruments characterised by the use of optical techniques
- G01B9/02—Interferometers
- G01B9/02015—Interferometers characterised by the beam path configuration
- G01B9/02027—Two or more interferometric channels or interferometers
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01B—MEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
- G01B9/00—Measuring instruments characterised by the use of optical techniques
- G01B9/02—Interferometers
- G01B9/021—Interferometers using holographic techniques
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B27/00—Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
- G02B27/10—Beam splitting or combining systems
- G02B27/14—Beam splitting or combining systems operating by reflection only
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B27/00—Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
- G02B27/28—Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00 for polarising
- G02B27/283—Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00 for polarising used for beam splitting or combining
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B27/00—Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
- G02B27/42—Diffraction optics, i.e. systems including a diffractive element being designed for providing a diffractive effect
- G02B27/4233—Diffraction optics, i.e. systems including a diffractive element being designed for providing a diffractive effect having a diffractive element [DOE] contributing to a non-imaging application
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B27/00—Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
- G02B27/42—Diffraction optics, i.e. systems including a diffractive element being designed for providing a diffractive effect
- G02B27/4272—Diffraction optics, i.e. systems including a diffractive element being designed for providing a diffractive effect having plural diffractive elements positioned sequentially along the optical path
- G02B27/4277—Diffraction optics, i.e. systems including a diffractive element being designed for providing a diffractive effect having plural diffractive elements positioned sequentially along the optical path being separated by an air space
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01B—MEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
- G01B2290/00—Aspects of interferometers not specifically covered by any group under G01B9/02
- G01B2290/20—Dispersive element for generating dispersion
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01B—MEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
- G01B2290/00—Aspects of interferometers not specifically covered by any group under G01B9/02
- G01B2290/70—Using polarization in the interferometer
Definitions
- the present invention relates to a displacement detecting device to detect displacement of a measured surface by a non-contact sensor using light emitted from a light source, and specifically relates to a technology of detecting displacement in a vertical direction of a measured surface.
- a displacement detecting device using light is widely used as a device of measuring displacement or a shape of a measured surface in a non-contact manner.
- a method of emitting a laser beam to a measured surface and detecting a change in a position of reflection light by a PSD there is a problem of being easily influenced by an inclination of a measured surface, of low sensitivity, and of a decrease in resolution of measurement during expansion of a measurement range.
- a detection range is wide and linearity is excellent.
- a wavelength of a light source and a refractive index of the air are changed.
- a numerical aperture (NA) of an objective lens is large and a diameter of a beam collected on a measured surface is small in order to improve accuracy in displacement detection. For example, in a case where a diameter of a beam imaged on a measured surface is around 2 ⁇ m, detection accuracy of a linear scale becomes a several nm to one hundred and a several nm.
- the present invention is to provide a displacement detecting device that can detect displacement in a height direction of a measured member highly accurately and that can perform stable measurement at high speed.
- the head includes a light source that emits light, a displacement detecting unit, and a light receiving unit.
- the displacement detecting unit divides the light emitted from the light source to a first light flux and a second light flux, and emits the first light flux to the first diffraction grating.
- the light receiving unit receives the second light flux, and the first light flux that returns from the first diffraction grating through the displacement detecting unit.
- An incident angle of the first light flux to the first diffraction grating, a diffraction angle of the first diffraction grating, an incident angle of the first light flux to the second diffraction grating, and a diffraction angle of the second diffraction grating are angles at which a displacement amount in an optical path length of the first light flux from the light flux dividing unit to the first diffraction grating and a displacement amount in an optical path length of the first light flux from the first diffraction grating to the second diffraction grating become equal in a case where at least one of the head and the measured member is displaced in the direction orthogonal to the measured surface.
- a displacement detecting device of the present invention includes a first diffraction grating and a head.
- the first diffraction grating is provided on a measured surface of a measured member.
- the head is arranged in such a manner of facing the measured surface of the measured member.
- the head and the measured member are relatively movable at least in one of a direction that is in parallel with the measured surface and in parallel with a grating vector direction of the first diffraction grating, and a direction orthogonal to the measured surface.
- the head includes a light source that emits light, a displacement detecting unit, and a light receiving unit.
- the displacement detecting unit divides the light emitted from the light source to a first light flux and a second light flux, and emits the first light flux to the first diffraction grating.
- the light receiving unit receives the second light flux, and the first light flux that returns from the first diffraction grating through the displacement detecting unit.
- the displacement detecting unit includes a light flux dividing unit, a second diffraction grating, a light flux parallel branch unit, a reference light reflecting member, and a light flux combining unit.
- the light flux dividing unit divides light into a first light flux and a second light flux, and emits the divided first light flux to the first diffraction grating.
- the second diffraction grating diffracts the first light flux divided by the light flux dividing unit and diffracted by the first diffraction grating, and emits the first light flux to the first diffraction grating again.
- the light flux parallel branch unit is arranged between the first diffraction grating and the second diffraction grating and makes the first light flux enter a position different from a first emission position on the first diffraction grating when making the first light flux diffracted by the second diffraction grating enter the first diffraction grating again.
- the reference light reflecting member reflects the second light flux divided by the light flux dividing unit.
- the light flux combining unit superposes the first light flux diffracted by the first diffraction grating and the second diffraction grating and the second light flux reflected by the reference light reflecting member, and performs emission thereof to the light receiving unit.
- the head makes light emitted from the light source enter the first diffraction grating vertically.
- the light flux parallel branch unit moves an optical path of the first light flux, which path is from the light flux parallel branch unit to the first diffraction grating, in parallel with an optical path of the first light flux from the first diffraction grating to the light flux parallel branch unit.
- a diffraction angle of the first diffraction grating, an incident angle of the first light flux to the second diffraction grating, and a diffraction angle of the second diffraction grating are angles at which a displacement amount in an optical path length of the first light flux from the light flux dividing unit to the first diffraction grating and a displacement amount in an optical path length of the first light flux from the first diffraction grating to the second diffraction grating become equal in a case where at least one of the head and the measured member is displaced in the direction orthogonal to the measured surface.
- a driving mechanism in a related art is not necessary.
- heat generated in use can be controlled.
- it is not necessary to drive a driving mechanism it is possible to solve a problem such as a response frequency and to widen a use condition.
- FIG. 1 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a first embodiment of the present invention
- FIG. 2 is a perspective view illustrating a measured member and a first diffraction grating of the displacement detecting device according to the first embodiment of the present invention
- FIG. 3 is a view for describing a relationship between diffraction angles of the first diffraction grating and a second diffraction grating in the displacement detecting device according to the first embodiment of the present invention
- FIG. 4 is a block diagram illustrating a relative positional information outputting means in the displacement detecting device according to the first embodiment of the present invention
- FIGS. 5A and 5B are views illustrating a modification example of the second diffraction grating in the displacement detecting device according to the first embodiment of the present invention, FIG. 5A being a sectional view illustrating a modification example of the second diffraction grating and FIG. 5B being a sectional view illustrating a different modification example of the second diffraction grating;
- FIG. 6 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a second embodiment of the present invention.
- FIG. 7 is a block diagram illustrating a relative positional information outputting means in the displacement detecting device according to the second embodiment of the present invention.
- FIG. 8 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a third embodiment of the present invention.
- FIG. 9 is a schematic configuration view illustrating a configuration of a first displacement detecting unit and a second displacement detecting unit in the displacement detecting device according to the third embodiment of the present invention.
- FIG. 10 is a schematic configuration view illustrating a configuration of a third displacement detecting unit and a fourth displacement detecting unit in the displacement detecting device according to the third embodiment of the present invention.
- FIG. 11 is a block diagram illustrating a relative positional information outputting means in the displacement detecting device according to the third embodiment of the present invention.
- FIGS. 12A and 12B are views illustrating a measured member and a first diffraction grating in the displacement detecting device according to the third embodiment of the present invention, FIG. 12A being a plan view illustrating the first diffraction grating and FIG. 12B being a sectional view illustrating the first diffraction grating;
- FIG. 13 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a fourth embodiment of the present invention.
- FIG. 14 is a view for describing a relationship between incident angles and diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the fourth embodiment of the present invention.
- FIG. 15 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a fifth embodiment of the present invention.
- FIG. 16 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a sixth embodiment of the present invention.
- FIG. 17 is a view for describing a relationship between incident angles and diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the sixth embodiment of the present invention.
- FIG. 18 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a seventh embodiment of the present invention.
- FIG. 19 is a view for describing a relationship between incident angles and diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the seventh embodiment of the present invention.
- FIG. 20 is a schematic configuration view illustrating a configuration of a displacement detecting device according to an eighth embodiment of the present invention.
- FIG. 21 is a view for describing a relationship between diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the eighth embodiment of the present invention.
- FIG. 22 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a ninth embodiment of the present invention.
- FIG. 23 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a tenth embodiment of the present invention.
- FIG. 24 is a schematic configuration view illustrating a configuration of a first displacement detecting unit and a second displacement detecting unit in the displacement detecting device according to the tenth embodiment of the present invention.
- FIG. 25 is a schematic configuration view illustrating a configuration of a third displacement detecting unit and a fourth displacement detecting unit in the displacement detecting device according to the tenth embodiment of the present invention.
- FIG. 26 is a schematic configuration view illustrating a configuration of a displacement detecting device according to an eleventh embodiment of the present invention.
- FIG. 27 is a view for describing a relationship between incident angles and diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the eleventh embodiment of the present invention.
- FIG. 28 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a twelfth embodiment of the present invention.
- FIG. 29 is a view for describing a relationship between incident angles and diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the twelfth embodiment of the present invention.
- FIG. 30 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a thirteenth embodiment of the present invention.
- FIG. 31 is a schematic configuration view illustrating a configuration of a displacement detecting device according to a fourteenth embodiment of the present invention.
- each of various lenses described in the following description may be a single lens or a lens group.
- the first embodiment (hereinafter, referred to as “present embodiment”) of the displacement detecting device of the present invention will be described with reference to FIG. 1 to FIG. 3 .
- FIG. 1 is a schematic configuration view illustrating a configuration of the displacement detecting device.
- FIG. 2 is a perspective view illustrating a measured member in which a first diffraction grating is provided in the displacement detecting device.
- a displacement detecting device 1 of the present embodiment is a displacement detecting device that detects displacement (movement amount) of when at least one of a head and a measured member is moved.
- the displacement detecting device 1 includes a first diffraction grating 11 provided on a measured surface 2 a of a measured member 2 , a head 3 , and a relative positional information outputting means 4 .
- the relative positional information outputting means 4 may be housed in the head 3 , or arranged in a mobile information processing terminal or a personal computer (PC) mobile terminal provided outside the head 3 .
- the head 3 and the measured member 2 are arranged in a manner relatively movable in a direction in parallel with the measured surface 2 a and in parallel with a grating vector direction S 1 (see FIG. 2 ) of the first diffraction grating 11 , or in a direction vertical to the measured surface 2 a . That is, at least one of the head 3 and the measured member 2 is arranged in a manner movable in at least one of the direction in parallel with the measured surface 2 a and the direction vertical to the measured surface 2 a.
- a direction in parallel with the measured surface 2 a and in parallel with the grating vector direction S 1 (see FIG. 2 ) of the first diffraction grating 11 is a first direction X.
- a direction that is in parallel with the measured surface 2 a and that is orthogonal to the first direction X is a second direction Y.
- a direction orthogonal to the measured surface 2 a that is, a direction orthogonal to the first direction X and the second direction Y is a third direction Z.
- the measured member 2 is formed in a tabular manner.
- the first diffraction grating 11 is provided in the measured surface 2 a , which faces the head 3 , in the measured member 2 .
- the first diffraction grating 11 is a reflection-type diffraction grating.
- the first diffraction grating 11 includes a plurality of projections 11 a projected from the measured surface 2 a .
- the plurality of projections 11 a is arranged at predetermined intervals in the first direction X.
- An interval between two adjacent projections 11 a in the plurality of projections 11 a is a grating pitch d R of the first diffraction grating 11 .
- a grating vector direction S 1 of this plurality of projections 11 a is arranged in parallel with the first direction X.
- a direction in which the projections 11 a are extended (grating line direction) S 2 is in parallel with the second direction Y in the measured surface 2 a .
- the grating vector direction S 1 and the grating line direction S 2 are on a plane in parallel with the measured surface 2 a .
- the grating vector direction S 1 is not necessarily in parallel with the first direction X
- the grating line direction S 2 is not necessarily in parallel with the second direction Y.
- first diffraction grating 11 includes the plurality of projections 11 a projected from the measured surface 2 a
- a first diffraction grating 11 may include a plurality of grooves formed in the measured surface 2 a of the measured member 2 , for example.
- the first diffraction grating 11 is formed in the measured member 2 including a glass or silicon substrate, for example. Then, the plurality of projections 11 a included in the first diffraction grating 11 is formed by evaporation of a material having high reflectivity such as gold or aluminum on the measured surface 2 a of the measured member 2 . Note that a grating pitch d R and a diffraction angle ⁇ of the first diffraction grating 11 will be described later.
- This first diffraction grating 11 provided in the measured member 2 diffracts light emitted from the head 3 and returns the light at a predetermined diffraction angle to the head 3 again.
- the head 3 includes a displacement detecting unit 5 , a light source 6 , and a light receiving unit 7 provided in the displacement detecting unit 5 .
- the light receiving unit 7 may be arranged in the displacement detecting unit 5 or arranged outside the displacement detecting unit 5 .
- the light source 6 for example, there is a semiconductor laser diode, a super luminescent diode, a gas laser, a solid-state laser, or a light-emitting diode.
- the light source 6 When a light source with a long coherence distance is used as the light source 6 , it is less likely to be influenced by an optical path length difference between object light and reference light due to a tilt or the like of the measured surface 2 a of the measured member 2 and an acceptable range of a tilt becomes wider. Also, as the coherence distance of the light source 6 becomes short, it becomes possible to prevent a noise due to interference of unnecessary stray light and to perform highly accurate measurement.
- a single-mode laser when used as the light source 6 , it is preferable to control a temperature of the light source 6 in order to stabilize a wavelength. Also, high frequency superposition or the like may be performed with respect to a beam of the single-mode laser and coherence of the beam may be decreased. Moreover, in a case where a multi-mode laser is used, it becomes also possible to prevent a noise due to interference of unnecessary stray light and to perform more stable measurement by controlling a temperature of the light source 6 by a Peltier element or the like.
- the number of light sources 6 is not limited to one.
- a plurality of light sources 6 may be arranged and a light quantity may be increased by superposition of pieces of light thereof.
- Light L emitted from the light source 6 enters the displacement detecting unit 5 .
- a lens 16 including a collimating lens or the like is arranged between the light source 6 and the displacement detecting unit 5 .
- the lens 16 collimates the light L emitted from the light source 6 into parallel light.
- the light L collimated into the parallel light by the lens 16 enters the displacement detecting unit 5 .
- the displacement detecting unit 5 emits the light L, which is emitted from the light source 6 , toward the first diffraction grating 11 of the measured member 2 and guides the light L returned from the measured member 2 to the light receiving unit 7 .
- the displacement detecting unit 5 includes a second diffraction grating 12 , a light flux dividing unit 13 , a reference mirror 14 indicating an example of a reference light reflecting member, an object mirror 15 indicating an example of an object light reflecting member, a first phase plate 17 , and a second phase plate 18 .
- the light flux dividing unit 13 includes, for example, a polarization beam splitter. Then, the light flux dividing unit 13 reflects s-polarized light and transmits p-polarized light. The light L emitted from the light source 6 and collimated into the parallel light by the lens 16 enters the light flux dividing unit 13 . Then, the light flux dividing unit 13 divides the light L into two light fluxes that are a first light flux L 1 as object light and a second light flux L 2 as reference light. In the present embodiment, the p-polarized light transmitted through the light flux dividing unit 13 becomes the first light flux L 1 and the s-polarized light reflected by the light flux dividing unit 13 becomes the second light flux L 2 . The first light flux L 1 advances toward the first diffraction grating 11 , and the second light flux L 2 advances toward the reference mirror 14 .
- the light flux dividing unit 13 divides the light L into the first light flux L 1 and the second light flux L 2 , and a light quantity ratio thereof is preferably a ratio in which a light quantity on a side of the first diffraction grating 11 and that on a side of the reference mirror 14 become the same in entrance to the light receiving unit 7 described later.
- a polarizing plate may be provided between the light source 6 and the light flux dividing unit 13 . Accordingly, it is possible to remove leakage light that exists slightly as a polarization component orthogonal to the s-polarized light and the p-polarized light, and a noise.
- a polarization beam splitter as the light flux dividing unit 13
- a light flux dividing unit 13 for example, a semitransparent mirror and a phase plate may be combined.
- the first phase plate 17 is arranged between the light flux dividing unit 13 and the measured surface 2 a of the measured member 2 , that is, the first diffraction grating 11 .
- the second phase plate 18 is arranged between the light flux dividing unit 13 and the reference mirror 14 .
- Each of the first phase plate 17 and the second phase plate 18 changes a polarization direction of passing light and includes, for example, a quarter wavelength plate.
- each of the first phase plate 17 and the second phase plate 18 changes the light into circularly polarized light that rotates in a first direction with an advancing direction as a center axis.
- passing light is changed into s-polarized light.
- passing light is changed into circularly polarized light that rotates in a second direction opposite to the first direction with an advancing direction as a center axis. Then, in a case of being circularly polarized light that rotates in the second direction, passing light is changed into p-polarized light.
- the light source 6 , the lens 16 , the light flux dividing unit 13 , and the first phase plate 17 are arranged in such a manner that an advancing direction of light transmitted through the light flux dividing unit 13 , that is, the first light flux L 1 is in parallel with the third direction Z.
- the first light flux L 1 that is transmitted through the light flux dividing unit 13 and that passes through the first phase plate 17 vertically enters the measured surface 2 a of the measured member 2 , that is, the first diffraction grating 11 . Accordingly, even when the measured member 2 is displaced in the third direction Z, a position of an incident point P of the first light flux L 1 that enters the first diffraction grating 11 is not changed on the first diffraction grating 11 .
- the second diffraction grating 12 is arranged in a position where the first light flux L 1 that is diffracted by the first diffraction grating 11 and that returns to the displacement detecting unit 5 enters.
- the second diffraction grating 12 is arranged in such a manner that a plane thereof is inclined in the third direction Z.
- the second diffraction grating 12 is a transmission-type diffraction grating that transmits light and diffracts the transmitted light. Note that a grating pitch d T and a diffraction angle ⁇ of the second diffraction grating 12 will be described later.
- the object mirror 15 is arranged in a direction, in which the first light flux L 1 incident from the first diffraction grating 11 is transmitted, in the second diffraction grating 12 . Also, the object mirror 15 is arranged in a position where the first light flux L 1 transmitted through the second diffraction grating 12 enters a reflection surface thereof vertically. Then, since the first light flux L 1 vertically enters the object mirror 15 , the object mirror 15 reflects the first light flux L 1 in such a manner that an optical path in the entrance and an optical path after the reflection become identical.
- the first light flux L 1 reflected by the object mirror 15 passes through an optical path that is the same with an outgoing optical path, passes through the second diffraction grating 12 , the first diffraction grating 11 , and the first phase plate 17 in this order, and enters the light flux dividing unit 13 again. That is, an optical path of the first light flux L 1 from the light flux dividing unit 13 to the object mirror 15 (hereinafter, referred to as “outgoing optical path”) and an optical path thereof from the object mirror 15 to the light flux dividing unit 13 (hereinafter, referred to as “incoming optical path”) are identical. Thus, a of entering the first diffraction grating 11 again in the incoming optical path is the same with an emission point P in the outgoing optical path.
- the first light flux L 1 is diffracted twice by each of the first diffraction grating 11 and the second diffraction grating 12 in the outgoing optical path and the incoming optical path.
- the reference mirror 14 is arranged in an advancing direction of the second light flux L 2 divided by the light flux dividing unit 13 .
- the reference mirror 14 is arranged in such a manner that a reflection surface thereof is in parallel with a surface, from which the second light flux L 2 is emitted, of the light flux dividing unit 13 . That is, the reference mirror 14 is arranged in a position where the second light flux L 2 vertically enters the reflection surface thereof. Then, since the second light flux L 2 enters the reference mirror 14 vertically, the reference mirror 14 reflects the second light flux L 2 in such a manner that an optical path in the entrance and an optical path after the reflection become identical.
- the second light flux L 2 reflected by the reference mirror 14 passes through an optical path that is the same with an outgoing optical path, passes through the second phase plate 18 , and enters the light flux dividing unit 13 again.
- the reference mirror 14 and the object mirror 15 are arranged in such a manner that a length of an optical path in which the first light flux L 1 is from the light flux dividing unit 13 , is reflected by the object mirror 15 , and returns to the light flux dividing unit 13 again, and a length of an optical path in which the second light flux L 2 is from the light flux dividing unit 13 , is reflected by the reference mirror 14 , and returns to the light flux dividing unit 13 become equal.
- the light flux dividing unit 13 superposes the returned first light flux L 1 reflected by the object mirror 15 and the returned second light flux L 2 reflected by the reference mirror 14 . Then, the light flux dividing unit 13 emits the superposed first light flux L 1 and second light flux L 2 to the light receiving unit 7 . That is, the light flux dividing unit 13 in the present embodiment has a function as a light flux dividing unit that divides a light flux and a function as a light flux combining unit that superposes the first light flux L 1 and the second light flux L 2 .
- the light receiving unit 7 includes a condenser lens 21 , a semitransparent mirror 22 , a first polarization beam splitter 24 , and a second polarization beam splitter 25 . Also, for example, a light receiving-side phase plate 23 including a quarter wavelength plate or the like is arranged in an optical path between the semitransparent mirror 22 and the second polarization beam splitter 25 .
- the condenser lens 21 collects the incident first light flux L 1 and second light flux L 2 from the light flux dividing unit 13 . Also, the condenser lens 21 collects light in such a manner that a beam diameter becomes an appropriate size on a first light receiving element 31 , a second light receiving element 32 , a third light receiving element 33 , and a fourth light receiving element 34 (described later).
- the semitransparent mirror 22 divides light. The light divided by the semitransparent mirror 22 enters the second polarization beam splitter 25 through the first polarization beam splitter 24 or the light receiving-side phase plate 23 .
- the first polarization beam splitter 24 is arranged in such a manner that a polarization direction of an incident light flux is inclined at 45 degrees with respect to an incident surface.
- the first light receiving element 31 and the second light receiving element 32 are provided on a light emitting opening side in this first polarization beam splitter 24 .
- the third light receiving element 33 and the fourth light receiving element 34 are provided on a light emitting opening side in the second polarization beam splitter 25 .
- Each of these first polarization beam splitter 24 and second polarization beam splitter 25 divides light by reflecting interference light having an s polarization component and by transmitting interference light having a p polarization component.
- Each of the first light receiving element 31 , the second light receiving element 32 , the third light receiving element 33 , and the fourth light receiving element 34 receives light and acquires an interference signal. Then, the relative positional information outputting means 4 is connected to the light receiving unit 7 .
- the light receiving unit 7 outputs the interference signals acquired by the first light receiving element 31 , the second light receiving element 32 , the third light receiving element 33 , and the fourth light receiving element 34 to the relative positional information outputting means 4 .
- FIG. 3 is a view for describing a relationship between diffraction angles of the first diffraction grating 11 and the second diffraction grating 12 .
- the first light flux L 1 enters the first diffraction grating 11 vertically in the third direction Z.
- the grating vector direction S 1 of the first diffraction grating 11 is in parallel with the first direction X as illustrated in FIG. 2 .
- the first diffraction grating 11 performs diffraction at the diffraction angle ⁇ .
- the diffraction angle ⁇ of the first diffraction grating 11 can be calculated by the following expressions 1 and 2.
- the first light flux L 1 diffracted by the first diffraction grating 11 enters the second diffraction grating 12 and is diffracted by the second diffraction grating 12 .
- a grating vector direction of the second diffraction grating 12 in this case is on a plane formed by the first direction X and the third direction Z.
- the grating vector direction of the second diffraction grating 12 is inclined at an angle ⁇ T with respect to an incident angle of the first light flux L 1 to the first diffraction grating 11 . That is, the grating vector direction of the second diffraction grating 12 is inclined at the angle ⁇ T with respect to the third direction Z.
- the second diffraction grating 12 performs diffraction at the diffraction angle ⁇ when the second diffraction grating 12 satisfies the Bragg condition.
- the grating pitch d T or the diffraction angle ⁇ of the second diffraction grating 12 is set in such a manner as to satisfy the following expressions 3 and 4 that are the Bragg condition.
- ⁇ is a wavelength of the first light flux L 1 .
- the second diffraction grating 12 When the second diffraction grating 12 satisfies the Bragg condition, it is possible to acquire extremely high diffraction efficiency, for example, by using a second diffraction grating 12 M of a transmission-type volume hologram (described later) (see FIG. 5A ).
- a second diffraction grating 12 M of a transmission-type volume hologram (described later) (see FIG. 5A ).
- a thin transmission-type diffraction grating may be used as the second diffraction grating 12 instead of the volume hologram.
- the first light flux L 1 diffracted for the second time by the second diffraction grating 12 (first diffraction is by first diffraction grating 11 ) is reflected by the object mirror 15 and enters the second diffraction grating 12 again.
- first diffraction is by first diffraction grating 11
- second diffraction grating 12 again. Note that as illustrated in FIG. 1 and FIG. 3 , in a case where the measured member 2 is not displaced in the third direction Z, a position of an incident point Q at which the first light flux L 1 enters the second diffraction grating 12 is not changed.
- the measured member 2 is displaced in the first direction X or the second direction Y, a position of the incident point Q at which the first light flux L 1 enters the second diffraction grating 12 is not changed. Then, the first light flux L 1 diffracted for the third time by the second diffraction grating 12 enters the first diffraction grating 11 and is diffracted for the fourth time by the first diffraction grating 11 .
- a distance from the incident point Q 2 on the second diffraction grating 12 to the object mirror 15 becomes longer for a length M 2 than an optical path length from the incident point Q 1 on the second diffraction grating 12 to the object mirror 15 of when the first diffraction grating 11 is not moved in the third direction Z.
- the diffraction angle ⁇ of the first diffraction grating 11 and the diffraction angle ⁇ of the second diffraction grating 12 satisfy the above expression 5. Accordingly, it is possible to make the optical path length of the first light flux L 1 constant even when the first diffraction grating 11 is moved in the third direction Z. Note that application to an optical path in which the first light flux L 1 is reflected by the object mirror 15 and returns to the light flux dividing unit 13 is also possible. Thus, it is possible to constantly make an optical path length of an incoming optical path of the first light flux L 1 constant.
- the grating pitch d R of the first diffraction grating 11 is 1 ⁇ m
- the incident angle of the first light flux L 1 to the first diffraction grating 11 is 0 degrees
- the grating pitch of the second diffraction grating 12 is d T , the diffraction angle ⁇ of the first diffraction grating 11 ⁇ 52.2° and the diffraction angle ⁇ of the second diffraction grating 12 ⁇ 45.9°.
- FIG. 4 is a block diagram illustrating the relative positional information outputting means 4 of the present embodiment.
- the relative positional information outputting means 4 includes a first differential amplifier 61 a , a second differential amplifier 61 b , a first A/D converter 62 a , a second A/D converter 62 b , a waveform correction processing unit 63 , and an incremental signal generator 64 .
- the first light receiving element 31 and the second light receiving element 32 are connected to the first differential amplifier 61 a and the third light receiving element 33 and the fourth light receiving element 34 are connected to the second differential amplifier 61 b .
- the first A/D converter 62 a is connected to the first differential amplifier 61 a and the second A/D converter 62 b is connected to the second differential amplifier 61 b .
- the first A/D converter 62 a and the second A/D converter 62 b are connected to the waveform correction processing unit 63 .
- the waveform correction processing unit 63 is connected to the incremental signal generator 64 .
- the first differential amplifier 61 a receives interference signals from the first light receiving element 31 and the second light receiving element 32
- the second differential amplifier 61 b receives interference signals from the third light receiving element 33 and the fourth light receiving element 34 .
- Each of the first differential amplifier 61 a and the second differential amplifier 61 b performs differential amplification of a received interference signal and cancels a DC component of the interference signal.
- A/D conversion of the signal on which the differential amplification is performed by the first differential amplifier 61 a is performed by the first A/D converter 62 a , and signal amplitude, an offset, and a phase thereof are corrected by the waveform correction processing unit 63 .
- This signal is calculated, for example, as an A-phase incremental signal in the incremental signal generator 64 .
- A/D conversion of the signal on which the differential amplification is performed by the second differential amplifier 61 b is performed by the second A/D converter 62 b .
- signal amplitude, an offset, and a phase are corrected by the waveform correction processing unit 63 , and this signal is output from the incremental signal generator 64 as a B-phase incremental signal a phase of which is different from the A-phase by 90 degrees.
- the displacement detecting device 1 detects a relative displacement amount (movement amount) of the measured member 2 and the head 3 .
- relative positional information output from the relative positional information outputting means 4 of the present embodiment may be the above-described incremental signals in two phases, or may be a signal including a displacement amount and a displacement direction calculated therefrom.
- light L emitted from the light source 6 is collimated by the lens 16 and becomes parallel light.
- the parallel light L collimated by the lens 16 enters the light flux dividing unit 13 .
- the light that enters the light flux dividing unit 13 is divided into a first light flux L 1 and a second light flux L 2 .
- the light flux dividing unit 13 reflects s-polarized light and transmits p-polarized light in the light.
- the first light flux L 1 that is the p-polarized light transmitted through the light flux dividing unit 13 is emitted to the first phase plate 17 .
- the second light flux L 2 that is the s-polarized light reflected by the light flux dividing unit 13 is emitted to the second phase plate 18 .
- the first light flux L 1 Since a polarization direction of the first light flux L 1 is p-polarized, the first light flux L 1 is changed into circularly polarized light that rotates in a first direction with an advancing direction as a center axis when passing through the first phase plate 17 . Also, since a polarization direction of the second light flux L 2 is s-polarized, the second light flux L 2 is changed into circularly polarized light that rotates in a second direction with an advancing direction as a center axis when passing through the second phase plate 18 .
- the first light flux L 1 passing through the first phase plate 17 vertically enters the measured surface 2 a of the measured member 2 , that is, the emission point P on the first diffraction grating 11 . Then, as illustrated in FIG. 3 , the first light flux L 1 is diffracted at the diffraction angle ⁇ by the first diffraction grating 11 . The first light flux L 1 that is diffracted for the first time enters the emission point Q on the second diffraction grating 12 at the incident angle ⁇ (see FIG. 1 ). As described above, since the second diffraction grating 12 satisfies the Bragg condition, the first light flux L 1 is diffracted at the diffraction angle ⁇ by the second diffraction grating 12 .
- the first light flux L 1 diffracted by the second diffraction grating 12 vertically enters the object mirror 15 . Then, the first light flux L 1 is reflected by the object mirror 15 toward the second diffraction grating 12 again.
- the first light flux L 1 enters the second diffraction grating 12 at the incident angle cp.
- the first light flux L 1 enters the emission point Q on the second diffraction grating 12 which point is the same with that in the outgoing optical path.
- the third diffraction is performed by the second diffraction grating 12 , and the first light flux L 1 enters the emission point P on the first diffraction grating 11 at the incident angle ⁇ which point is the same with that in the outgoing optical path.
- a polarization direction of the first light flux L 1 here is circularly polarized light rotating in the first direction with the advancing direction as the center axis.
- the first light flux L 1 is changed by the first phase plate 17 into the s-polarized light orthogonal to the p-polarized light that is an outgoing polarization direction.
- the second light flux L 2 emitted to the reference mirror 14 is reflected by the reference mirror 14 and emitted again to the second phase plate 18 .
- a polarization direction of the second light flux L 2 here is circular polarized light rotating in the second direction with the advancing direction as the center axis.
- the second light flux L 2 is changed by the second phase plate 18 into the p-polarized light orthogonal to the s-polarized light that is an outgoing polarization direction.
- the first light flux L 1 passing through the first phase plate 17 enters the light flux dividing unit 13 again, and the second light flux L 2 passing through the second phase plate 18 enters the light flux dividing unit 13 again.
- the first light flux L 1 is reflected by the light flux dividing unit 13 and emitted to the light receiving unit 7 since the polarization direction thereof is s-polarized.
- the second light flux L 2 is transmitted through the light flux dividing unit 13 and emitted to the light receiving unit 7 since the polarization direction thereof is p-polarized.
- a light flux in which the first light flux L 1 and the second light flux L 2 that are pieces of linearly-polarized light orthogonal to each other are superposed enters the light receiving unit 7 .
- the light flux is collected by the condenser lens 21 and emitted to the semitransparent mirror 22 .
- the semitransparent mirror 22 divides the light flux into two pieces of light. A light flux transmitted through the semitransparent mirror 22 enters the first polarization beam splitter 24 .
- the first polarization beam splitter 24 is arranged in an inclined manner in such a manner that the polarization directions of the first light flux L 1 and the second light flux L 2 polarization directions of which are different from each other by 90 degrees are inclined by 45 degrees with respect to an incident surface of the first polarization beam splitter 24 . Accordingly, the first light flux L 1 and the second light flux L 2 respectively have a p polarization component and an s polarization component with respect to the first polarization beam splitter 24 . Thus, in the first light flux L 1 and the second light flux L 2 transmitted through the first polarization beam splitter 24 , pieces of polarized light having the same polarization direction interfere with each other. Thus, it is possible to make the first light flux L 1 and the second light flux L 2 interfere with each other by the first polarization beam splitter 24 .
- interference light between the first light flux L 1 and the second light flux L 2 transmitted through the first polarization beam splitter 24 is received by the first light receiving element 31 .
- the interference light between the first light flux L 1 and the second light flux L 2 reflected by the first polarization beam splitter 24 is received by the second light receiving element 32 .
- interference signals photoelectrically converted by the first light receiving element 31 and the second light receiving element 32 become signals with phases different from each other by 180 degrees.
- interference signals acquired by the first light receiving element 31 and the second light receiving element 32 interference signals of A ⁇ cos (2 ⁇ K1x+2 ⁇ B ⁇ K2z+ ⁇ ) are acquired.
- A is amplitude of interference
- K1 is a wave number of the first diffraction grating 11 which number is expressed by 2 ⁇ /d R .
- x indicates a movement amount of the first diffraction grating 11 , that is, a relative displacement amount in the first direction X of the head 3 and the measured member 2 .
- K2 is a wave number of the second diffraction grating 12 which number is expressed by 2 ⁇ /d T .
- z indicates a movement amount, in a grating vector direction of the second diffraction grating 12 , in the first light flux L 1 that enters the second diffraction grating 12 .
- d R is a grating pitch of the first diffraction grating 11
- d T is a grating pitch of the second diffraction grating 12 .
- ⁇ indicates an initial phase.
- the head 3 and the measured member 2 are relatively moved for x/2 in the first direction X, an emission point of the first light flux L 1 emitted to the first diffraction grating 11 is moved for x/2 in the first direction X. That is, the first light flux L 1 is moved for x/2 in the first direction X on the first diffraction grating 11 .
- a phase of K1x is added to the first light flux L 1 , and interference light in which lightness/darkness of light in one cycle is generated is received by the first light receiving element 31 and the second light receiving element 32 .
- the emission point of the first light flux L 1 emitted to the second diffraction grating 12 is moved for Z/2 in the grating vector direction on the second diffraction grating 12 . That is, the first light flux L 1 is moved for Z/2 in the grating vector direction on the second diffraction grating 12 .
- a phase of K2z is added to the first light flux L 1 , and interference light in which lightness/darkness of light in one cycle is generated is received by the first light receiving element 31 and the second light receiving element 32 .
- the first light flux L 1 enters the first diffraction grating 11 in parallel with the third direction Z.
- the first light flux L 1 vertically enters the first diffraction grating 11 .
- the emission point of the first light flux L 1 on the first diffraction grating 11 is not changed.
- only a phase diffracted by the second diffraction grating 12 is added to the first light flux L 1 .
- the diffraction angle ⁇ of the first diffraction grating 11 and the diffraction angle ⁇ of the second diffraction grating 12 satisfy the above expression 5.
- ⁇ Z and the sum of M 1 +M 2 illustrated in FIG. 3 constantly become 0.
- an optical path length of the first light flux L 1 is not changed.
- the head 3 and the measured member 2 are relatively moved for ⁇ Z in the third direction Z, only an incident position of the first light flux L 1 on the second diffraction grating 12 is changed.
- the interference signals acquired by the first light receiving element 31 and the second light receiving element 32 do not have a component related to a wavelength of the light source 6 .
- interference intensity is not influenced.
- a light flux reflected by the semitransparent mirror 22 enters the light receiving-side phase plate 23 .
- a light flux including the first light flux L 1 and second light flux L 2 that are linearly polarized light polarization directions of which are different from each other by 90 degrees becomes pieces of circularly polarized light that rotate reversely.
- the pieces of circularly polarized light rotating reversely are superposed with each other, become linearly polarized light, and enter the second polarization beam splitter 25 .
- An s polarization component of this linearly polarized light is reflected by the second polarization beam splitter 25 and received by the third light receiving element 33 . Also, a p polarization component is transmitted through the second polarization beam splitter 25 and received by the fourth light receiving element 34 .
- the linearly polarized light that enters the second polarization beam splitter 25 is generated by superposition of the pieces of circularly polarized light rotating reversely. Then, a polarization direction of the linearly polarized light that enters the second polarization beam splitter 25 is rotated for 1 ⁇ 2 when the head 3 and the measured member 2 are relatively moved for d R /2 in the first direction X. Also, when the head 3 and the measured member 2 are relatively moved for d T /(2 ⁇ B) in the first direction X, the polarization direction of the linearly polarized light that enters the second polarization beam splitter 25 is rotated for 1 ⁇ 2.
- interference signals of A ⁇ cos (2 ⁇ K1x+2 ⁇ B ⁇ K2z+ ⁇ ′) are acquired in the third light receiving element 33 and the fourth light receiving element 34 .
- ⁇ ′ is an initial phase.
- the signals photoelectrically converted in the third light receiving element 33 and the fourth light receiving element 34 have phases different from each other by 180 degrees.
- the second polarization beam splitter 25 that divides light fluxes received by the third light receiving element 33 and the fourth light receiving element 34 is arranged in such a manner as to be inclined by 45 degrees with respect to the first polarization beam splitter 24 .
- signals acquired in the third light receiving element 33 and the fourth light receiving element 34 have phases deviated by 90 degrees from those of the signals acquired in the first light receiving element 31 and the second light receiving element 32 .
- the signals acquired by these light receiving elements are calculated by the relative positional information outputting means 4 , and a relative displacement amount of the head 3 and the measured member 2 is counted. Accordingly, it is possible to detect a relative displacement amount of the head 3 and the measured member 2 .
- an interference signal acquired in the light receiving unit 7 of the displacement detecting unit 5 includes displacement information in the first direction X and the third direction Z.
- an interference signal acquired in the light receiving unit 7 of the displacement detecting unit 5 includes displacement information in the first direction X and the third direction Z.
- application to a device that detects relative displacement in the first direction X of the head 3 and the measured member 2 of a case where the head 3 and the measured member 2 are relatively moved only in the first direction X is possible.
- application to a device that detects relative displacement in the third direction Z of the head 3 or the measured member 2 of a case where the head 3 and the measured member 2 are relatively moved only in the third direction Z is possible. That is, the displacement detecting device 1 of the present embodiment has two usages in one device.
- FIG. 5A is a sectional view illustrating a modification example of the second diffraction grating
- FIG. 5B is a sectional view illustrating a different modification example of the second diffraction grating.
- a second diffraction grating 12 M illustrated in FIG. 5A is a so-called volume hologram using a photographic plate. An absorption hologram may be used. However, here, a phase hologram will be described.
- a grating unit 12 b in this second diffraction grating 12 M is formed, for example, in the following manner. First, a silver salt emulsion sensitive to light is applied to one surface of a glass substrate 12 a , an interference fringe is exposed, and bleaching is performed after developing. Accordingly, a part where a silver particle remains and a part where no silver particle remains are formed in the grating unit 12 b.
- the part where a silver particle remains has a high refractive index and the part where no silver particle remains has a low refractive index. That is, this is a phase hologram.
- a hologram recording photopolymer may be used as a material instead of a photographic plate.
- a grating unit 12 c having, for example, chromium (Cr) is formed on one surface of a subsequently-transparent glass substrate 12 a .
- a thickness thereof is 1 ⁇ m or less.
- the second diffraction grating 12 M illustrated in FIG. 5A when the Bragg condition is satisfied, it is possible to make an output of diffracted light diffracted by the second diffraction grating 12 M maximum. That is, it is possible to prevent a decrease in a quantity of the diffracted light diffracted by the second diffraction grating 12 M.
- FIG. 6 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the second embodiment
- FIG. 7 is a block diagram illustrating a relative positional information outputting means in the displacement detecting device according to the second embodiment.
- a displacement detecting device 101 according to the second embodiment is a displacement detecting device that can output two-dimensional displacement information in a first direction X and a third direction Z.
- the same sign is assigned to a common part with the displacement detecting device 1 according to the first embodiment, and an overlapped description is omitted.
- a displacement detecting device 101 includes a measured member 2 in which a first diffraction grating 111 is provided, a head 103 , and a relative positional information outputting means 104 .
- the head 103 and the measured member 2 are configured in a manner relatively movable in two directions that are the first direction X and the third direction Z.
- a direction of diffracted light faces one side in the first direction X on a side of a first displacement detecting unit 5 A of the head 103 (described later). Also, in the first diffraction grating 111 , a direction of diffracted light faces the other side in the first direction X on a side of a second displacement detecting unit 5 B of the head 103 .
- a blazed grating is preferably used as the first diffraction grating 111 .
- the head 103 includes the first displacement detecting unit 5 A, the second displacement detecting unit 5 B, a light source 6 , a lens 16 , a light source-side phase plate 106 , and an optical distributor 107 .
- the first displacement detecting unit 5 A is arranged on one side in the first direction X of the head 103 and the second displacement detecting unit 5 B is arranged on the other side in the first direction X of the head 103 .
- the light source-side phase plate 106 adjusts a polarizing axis of light L emitted from the light source 6 and, for example, adjusts the light to circularly polarized light inclined by 45° with respect to an optical axis.
- the light L passing through the light source-side phase plate 106 is emitted to the optical distributor 107 .
- the optical distributor 107 includes, for example, a mirror 107 a and a semitransparent mirror 107 b .
- the semitransparent mirror 107 b is arranged on a light source 6 side of the mirror 107 a.
- Reflectivity to the other side in the first direction X on the semitransparent mirror 107 b is set to 50%.
- the semitransparent mirror 107 b equally distributes the light L passing through the light source-side phase plate 106 to a mirror 107 a side in the third direction Z and the other side in the first direction X. Then, light LB reflected by the semitransparent mirror 107 b is emitted toward a light flux dividing unit 13 B of the second displacement detecting unit 5 B.
- the mirror 107 a reflects the incident light LA toward a light flux dividing unit 13 A of the first displacement detecting unit 5 A.
- the first displacement detecting unit 5 A includes a light receiving unit 7 A, a second diffraction grating 12 A, the light flux dividing unit 13 A, a reference mirror 14 A, an object mirror 15 A, a first phase plate 17 A, and a second phase plate 18 A.
- the light receiving unit 7 A is connected to a first relative positional information outputting unit 4 A of the relative positional information outputting means 104 . Then, the light receiving unit 7 A transmits an acquired interference signal to the first relative positional information outputting unit 4 A.
- the light receiving unit 7 A of the first displacement detecting unit 5 A acquires an interference signal expressed in the following expression 7.
- A1 is amplitude of interference.
- the second displacement detecting unit 5 B includes a light receiving unit 7 B, a second diffraction grating 12 B, the light flux dividing unit 13 B, a reference mirror 14 B, an object mirror 15 B, a first phase plate 17 B, and a second phase plate 18 B.
- the light receiving unit 7 B is connected to a second relative positional information outputting unit 4 B of the relative positional information outputting means 104 . Then, the light receiving unit 7 B transmits an acquired interference signal to the second relative positional information outputting unit 4 B.
- the second diffraction grating 12 B, the light flux dividing unit 13 B, the reference mirror 14 B, the object mirror 15 B, the first phase plate 17 B, and the second phase plate 18 B included in the second displacement detecting unit 5 B are arranged in a manner reversed in the first direction X from those of the first displacement detecting unit 5 A.
- the light receiving unit 7 B of the second displacement detecting unit 5 B acquires an interference signal expressed in the following expression 8.
- A2 is amplitude of interference.
- the relative positional information outputting means 104 includes the first relative positional information outputting unit 4 A, the second relative positional information outputting unit 4 B, and an arithmetic unit 114 .
- a positive/negative of displacement information in the first direction X in the interference signals acquired by the light receiving unit 7 A of the first displacement detecting unit 5 A and the light receiving unit 7 B of the second displacement detecting unit 5 B is different.
- the arithmetic unit 114 calculates displacement information of a relative position in the third direction Z of the head 103 and the measured member 2 . Also, by subtracting the displacement information B of the second relative positional information outputting unit 4 B from the displacement information A of the first relative positional information outputting unit 4 A and dividing this by two, the arithmetic unit 114 calculates displacement information in the first direction X of the head 103 and the measured member 2 .
- the displacement detecting device 101 of the second embodiment it is possible to output two-dimensional displacement information in the first direction X and the third direction Z.
- the other configurations are similar to those of the displacement detecting device 1 according to the first embodiment, a description thereof is omitted. According to the displacement detecting device 101 having such a configuration, it is also possible to acquire an effect similar to that of the displacement detecting device 1 according to the first embodiment described above.
- FIG. 8 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the third embodiment.
- FIG. 9 is a schematic configuration view illustrating a configuration of a first displacement detecting unit and a second displacement detecting unit in the displacement detecting device according to the third embodiment.
- FIG. 10 is a schematic view illustrating a configuration of a third displacement detecting unit and a fourth displacement detecting unit in the displacement detecting device according to the third embodiment.
- FIG. 11 is a block diagram illustrating a relative positional information outputting means in the displacement detecting device according to the third embodiment.
- FIG. 12A and FIG. 12B are views illustrating a first diffraction grating in the displacement detecting device according to the third embodiment.
- a displacement detecting device 201 according to the third embodiment is a displacement detecting device that can output three-dimensional displacement information in a first direction X, a third direction Z, and a second direction Y orthogonal to the first direction X and the third direction Z.
- the same sign is assigned to a common part with the displacement detecting device 1 according to the first embodiment, and an overlapped description is omitted.
- the displacement detecting device 201 includes a measured member 202 in which a first diffraction grating 211 is provided, a head 203 , and a relative positional information outputting means 204 .
- the head 203 and the measured member 202 are configured in a manner relatively movable in three directions that are the first direction X, the second direction Y, and the third direction Z.
- the measured member 202 is formed in a tabular manner.
- the first diffraction grating 211 is provided in a measured surface 202 a of the measured member 202 .
- the first diffraction grating 211 has a first grating vector direction in parallel with the first direction X, and a second grating vector direction in parallel with the second direction Y.
- the first diffraction grating 211 includes a plurality of projections 211 a .
- the plurality of projections 211 a is projected in the third direction Z from the measured surface 202 a .
- the plurality of projections 211 a is arranged in a grid-like manner at intervals in the first grating vector direction in parallel with the first direction X and the second grating vector direction in parallel with the second direction Y.
- first diffraction grating 211 includes the plurality of projections 211 a has been described.
- the head 203 includes a first displacement detecting unit 5 A, a second displacement detecting unit 5 B, a third displacement detecting unit 5 C, a fourth displacement detecting unit 5 D, a light source 6 , a lens 16 , a light source-side phase plate 106 , and an optical distributor 207 .
- the first displacement detecting unit 5 A is arranged on one side in the first direction X of the head 203 and the second displacement detecting unit 5 B is arranged on the other side in the first direction X of the head 203 .
- the third displacement detecting unit 5 C is arranged on one side in the second direction Y of the head 203 and the fourth displacement detecting unit 5 D is arranged on the other side in the second direction Y of the head 203 .
- the light source 6 , the lens 16 , the light source-side phase plate 106 , and the optical distributor 207 are arranged between the first displacement detecting unit 5 A, the second displacement detecting unit 5 B, the third displacement detecting unit 5 C, and the fourth displacement detecting unit 5 D. That is, the light source 6 , the lens 16 , the light source-side phase plate 106 , and the optical distributor 207 are arranged in a center part in the first direction X and the second direction Y in the head 203 .
- the optical distributor 207 includes a mirror 207 a , a first semitransparent mirror 207 b , a second semitransparent mirror 207 c , and a third semitransparent mirror 207 d .
- the mirror 207 a , the first semitransparent mirror 207 b , the second semitransparent mirror 207 c , and the third semitransparent mirror 207 d are arranged in this order in the third direction Z from a side of the measured member 202 in the third direction Z. That is, the third semitransparent mirror 207 d is arranged on a side of the light source 6 .
- Reflectivity to the other side in the second direction Y on the third semitransparent mirror 207 d is set to 25%.
- Reflectivity to one side in the second direction Y on the second semitransparent mirror 207 c is set to 33.3%.
- reflectivity to the other side in the first direction X on the first semitransparent mirror 207 b is set to 50%.
- Light LD reflected by the third semitransparent mirror 207 d is emitted toward the light flux dividing unit 13 D of the fourth displacement detecting unit 5 D.
- Light LC transmitted through the third semitransparent mirror 207 d and reflected by the second semitransparent mirror 207 c is emitted toward the light flux dividing unit 13 C of the third displacement detecting unit 5 C.
- Light LB transmitted through the third semitransparent mirror 207 d and the second semitransparent mirror 207 c and reflected by the first semitransparent mirror 207 b is emitted toward the light flux dividing unit 13 B of the second displacement detecting unit 5 B.
- the optical distributor 207 has a non-polarization characteristic, it becomes unnecessary to provide a phase plate or the like, which adjusts a polarizing axis of light, in a space from the optical distributor 207 to the light flux dividing units 13 A, 13 B, 13 C, and 13 D of the displacement detecting units 5 A, 5 B, 5 C, and 5 D.
- first displacement detecting unit 5 A and the second displacement detecting unit 5 B respectively have configurations similar to those of the first displacement detecting unit 5 A and the second displacement detecting unit 5 B according to the second embodiment, a description thereof is omitted.
- a light receiving unit 7 A of the first displacement detecting unit 5 A acquires an interference signal expressed in the following expression 9.
- A1 is amplitude of interference.
- a light receiving unit 7 B of the second displacement detecting unit 5 B acquires an interference signal expressed in the following expression 10.
- A2 is amplitude of interference.
- the third displacement detecting unit 5 C includes a light receiving unit 7 C, a second diffraction grating 12 C, a light flux dividing unit 13 C, a reference mirror 14 C, an object mirror 15 C, a first phase plate 17 C, and a second phase plate 18 C. Also, a grating vector direction of the second diffraction grating 12 C is on a plane formed by the second direction Y and the third direction Z.
- the light receiving unit 7 C is connected to a third relative positional information outputting unit 4 C of the relative positional information outputting means 204 . Then, the light receiving unit 7 C transmits an acquired interference signal to the third relative positional information outputting unit 4 C.
- the light receiving unit 7 C of the third displacement detecting unit 5 C acquires an interference signal expressed in the following expression 11.
- A3 is amplitude of interference.
- y indicates a movement amount of the first diffraction grating 211 , that is, a relative displacement amount in the second direction Y of the head 203 and the measured member 202 .
- the fourth displacement detecting unit 5 D includes a light receiving unit 7 D, a second diffraction grating 12 D, a light flux dividing unit 13 D, a reference mirror 14 D, an object mirror 15 D, a first phase plate 17 D, and a second phase plate 18 D. Also, a grating vector direction of the second diffraction grating 12 C is on a plane formed by the second direction Y and the third direction Z.
- the light receiving unit 7 D is connected to a fourth relative positional information outputting unit 4 D of the relative positional information outputting means 204 . Then, the light receiving unit 7 D transmits an acquired interference signal to the fourth relative positional information outputting unit 4 D.
- the second diffraction grating 12 D, the light flux dividing unit 13 D, the reference mirror 14 D, the object mirror 15 D, the first phase plate 17 D, and the second phase plate 18 D included in the fourth displacement detecting unit 5 D are arranged in a manner reversed in the second direction Y from those of the first displacement detecting unit 5 A.
- the light receiving unit 7 D of the fourth displacement detecting unit 5 D acquires an interference signal expressed in the following expression 12.
- A4 is amplitude of interference.
- the relative positional information outputting means 204 includes a first relative positional information outputting unit 4 A, a second relative positional information outputting unit 4 B, a third relative positional information outputting unit 4 C, a fourth relative positional information outputting unit 4 D, and an arithmetic unit 214 .
- a positive/negative of displacement information in the first direction X in the interference signals acquired by the light receiving unit 7 A of the first displacement detecting unit 5 A and the light receiving unit 7 B of the second displacement detecting unit 5 B is different.
- a positive/negative of displacement information in the second direction Y in the interference signals acquired by the light receiving unit 7 C of the third displacement detecting unit 5 C and the light receiving unit 7 D of the fourth displacement detecting unit 5 D is different.
- the arithmetic unit 214 calculates displacement information of a relative position in the third direction Z of the head 203 and the measured member 202 .
- the arithmetic unit 214 calculates displacement information in the first direction X of the head 203 and the measured member 202 .
- the arithmetic unit 214 calculates displacement information in the second direction Y of the head 203 and the measured member 202 .
- the displacement detecting device 201 of the third embodiment it is possible to output three-dimensional displacement information in the first direction X, the second direction Y, and the third direction Z.
- the displacement detecting device 201 Since the other configurations are similar to those of the displacement detecting device 1 according to the first embodiment, a description thereof is omitted. According to the displacement detecting device 201 having such a configuration, it is also possible to acquire an effect similar to that of the displacement detecting device 1 according to the first embodiment described above.
- first grating vector direction and the second grating vector direction of the first diffraction grating 211 are orthogonal to each other.
- a first grating vector direction and a second grating vector direction may not be orthogonal to each other and only need to intersect with each other on the measured surface 202 a of the measured member 202 .
- the first displacement detecting unit 5 A and the second displacement detecting unit 5 B are arranged in the first grating vector direction
- the third displacement detecting unit 5 C and the fourth displacement detecting unit 5 D are arranged in the second grating vector direction.
- FIG. 13 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the fourth embodiment
- FIG. 14 is a view for describing a relationship between incident angles and diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the fourth embodiment.
- a displacement detecting device 301 according to the fourth embodiment is different from the displacement detecting device 1 according to the first embodiment in a point that a first light flux L 1 does not vertically enter a first diffraction grating and a point that a second diffraction grating does not satisfy the Bragg condition.
- the same sign is assigned to a common part with the displacement detecting device 1 according to the first embodiment, and an overlapped description is omitted.
- the displacement detecting device 301 includes a head (not illustrated), a first diffraction grating 11 provided in a measured member 2 , and a relative positional information outputting means 304 . Also, a light source 6 , a light receiving unit 7 , a lens 16 , a light flux dividing unit 313 , a second diffraction grating 312 , a reference mirror 314 , an object mirror 315 , a first phase plate 317 , and a second phase plate 318 are arranged in the head.
- the first light flux L 1 does not vertically enter the first diffraction grating.
- the light source 6 , the lens 16 , the light flux dividing unit 313 , the second diffraction grating 312 , the reference mirror 314 , the object mirror 315 , the first phase plate 317 , and the second phase plate 318 are arranged in positions different from those in the displacement detecting device 1 according to the first embodiment.
- the reference mirror 314 is arranged in a position where an optical path length of a second light flux L 2 becomes the same with an optical path length of a first light flux L 1 . Also, the reference mirror 314 is arranged in a position where the second light flux L 2 emitted from the light flux dividing unit 313 enters vertically. Moreover, the object mirror 315 is arranged in a position where the first light flux L 1 diffracted by the second diffraction grating 312 enters vertically.
- an optical path length from the incident point P 2 on the first diffraction grating 11 to the incident point Q 2 on the second diffraction grating 312 becomes longer for a length M 1 than an optical path length from the incident point P 1 on the first diffraction grating 11 to the incident point Q 1 on the second diffraction grating 312 of when the first diffraction grating 11 is not moved in the third direction Z.
- a distance from the incident point Q 2 on the second diffraction grating 312 to the object mirror 315 becomes longer for a length M 2 than an optical path length from the incident point Q 1 on the second diffraction grating 312 to the object mirror 315 of when the first diffraction grating 11 is not moved in the third direction Z.
- the diffraction angle ⁇ of the first diffraction grating 11 and the diffraction angle ⁇ 2 of the second diffraction grating 312 satisfy the above expression 13. Accordingly, it is possible to make the optical path length of the first light flux L 1 constant even when the first diffraction grating 11 is moved in the third direction Z. Note that application to an optical path in which the first light flux L 1 is reflected by the object mirror 315 and returns to the light flux dividing unit 313 is also possible. Thus, it is possible to constantly make an optical path length of an incoming optical path of the first light flux L 1 constant.
- a light receiving element of the light receiving unit 7 acquires an interference signal expressed, for example, in the following expression 14.
- a ⁇ cos(2 K 1 X+ 2 K 1 Z tan ⁇ R +2 K 2 BZ + ⁇ ) B ⁇ sin( ⁇ 1 + ⁇ + ⁇ R ) ⁇ cos( ⁇ 1 + ⁇ + ⁇ R )tan ⁇ 1 ⁇ /cos ⁇ R [Expression 14]
- K1 is a wave number of the first diffraction grating 11 which number is expressed by 2 ⁇ /d R .
- x indicates a movement amount of the first diffraction grating 11 , that is, a relative displacement amount in the first direction X of the head 3 and the measured member 2 .
- K2 is a wave number of the second diffraction grating 312 which number is expressed by 2 ⁇ /d T .
- z indicates a movement amount, in a grating vector direction of the second diffraction grating 312 , in the first light flux L 1 that enters the second diffraction grating 312 .
- d R is a grating pitch of the first diffraction grating 11
- d T is a grating pitch of the second diffraction grating 312 .
- ⁇ indicates an initial phase.
- B is a coefficient associated with inclination of the grating vector direction of the second diffraction grating 312 at an inclination angle ⁇ T in a direction in which the first light flux L 1 enters the first diffraction grating 11 .
- the optical path length of the first light flux L 1 is not changed when the diffraction angle ⁇ of the first diffraction grating 11 and the diffraction angle ⁇ 2 of the second diffraction grating 312 satisfy the above expression 13.
- the other configurations are similar to those of the displacement detecting device 1 according to the first embodiment, a description thereof is omitted. According to the displacement detecting device 301 having such a configuration, it is also possible to acquire an effect similar to that of the displacement detecting device 1 according to the first embodiment described above.
- FIG. 15 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the fifth embodiment.
- a displacement detecting device 401 according to the fifth embodiment detects relative displacement in a third direction Z in a head 3 or a measured member 2 .
- the same sign is assigned to a common part with the displacement detecting device 1 according to the first embodiment, and an overlapped description is omitted.
- the displacement detecting device 401 includes a first diffraction grating 11 provided in a measured member 2 , a head 403 , and a relative positional information outputting means 404 .
- the head 403 includes a displacement detecting unit 405 , a light source 6 , and a light receiving unit 7 provided in the displacement detecting unit 405 .
- the displacement detecting unit 405 includes a second diffraction grating 12 , a light flux dividing unit 13 , an object mirror 15 , and a first phase plate 17 . Note that since the second diffraction grating 12 , the object mirror 15 , and the first phase plate 17 have configurations similar to those of the displacement detecting device 1 according to the first embodiment, a description thereof is omitted.
- the head 403 includes a light flux combining unit 413 , a third diffraction grating 412 , a first reference reflecting member 414 a , a second reference reflecting member 414 b , a second object mirror 415 , and a third phase plate 417 .
- the first reference reflecting member 414 a and the second reference reflecting member 414 b are arranged in positions facing each other on both sides in a first direction X in the head 3 .
- Each of the first reference reflecting member 414 a and the second reference reflecting member 414 b includes a triangle prism.
- a reference reflecting member is not limited to a mirror, and various different optical components such as a prism can be applied thereto.
- a second light flux L 2 that is reference light reflected by the light flux dividing unit 13 is emitted toward the first reference reflecting member 414 a .
- the first reference reflecting member 414 a reflects the incident second light flux L 2 toward the second reference reflecting member 414 b .
- the second reference reflecting member 414 b reflects the incident second light flux L 2 toward the light flux combining unit 413 .
- the light flux combining unit 413 , the third diffraction grating 412 , the second object mirror 415 , and the third phase plate 417 are arranged on one side in the first direction X of the light flux dividing unit 13 , the second diffraction grating 12 , the object mirror 15 , and the first phase plate 17 . More specifically, the light flux combining unit 413 , the third diffraction grating 412 , the second object mirror 415 , and the third phase plate 417 are respectively arranged in positions reversed in the first direction X from the light flux dividing unit 13 , the second diffraction grating 12 , the object mirror 15 , and the first phase plate 17 .
- a first light flux L 1 that enters a first emission point PA on the first diffraction grating 11 , that is diffracted twice by each of the first diffraction grating 11 and the second diffraction grating 12 , and that returns to the light flux dividing unit 13 again is reflected by the light flux dividing unit 13 and emitted toward the light flux combining unit 413 .
- the light flux combining unit 413 reflects the incident first light flux L 1 toward the first diffraction grating 11 of the measured member 2 again. That is, the light flux combining unit 413 has a function as a re-reflection unit.
- the first light flux L 1 reflected by the light flux combining unit 413 passes through the third phase plate 417 , and a polarization direction thereof is changed to circularly polarized light. Then, the first light flux L 1 passing through the third phase plate 417 enters a second emission point PB on the first diffraction grating 11 . The first light flux L 1 is diffracted by the first diffraction grating 11 . Note that a diffraction direction at the second emission point PB faces the opposite side in the first direction X of a diffraction direction at the first emission point PA. That is, the diffraction direction at the second emission point PB is reversed from the diffraction direction at the first emission point PA.
- the first light flux L 1 diffracted by the first diffraction grating 11 enters the third diffraction grating 412 . Then, the first light flux L 1 is diffracted by the third diffraction grating 412 and enters the second object mirror 415 . The first light flux L 1 is reflected by the second object mirror 415 and enters the third diffraction grating 412 again. Then, the first light flux L 1 is diffracted again by the third diffraction grating 412 and enters the first diffraction grating 11 .
- a grating pitch or a diffraction angle of the third diffraction grating 412 is the same with the grating pitch d T or the diffraction angle ⁇ of the second diffraction grating 12 .
- a positional relationship between the third diffraction grating 412 and the second object mirror 415 is reversed in the first direction X from a positional relationship between the second diffraction grating 12 and the object mirror 15 , and positional relationships in the third direction Z thereof are the same. Thus, a description of these is omitted.
- the first light flux L 1 that enters the first diffraction grating 11 is diffracted by the first diffraction grating 11 and emitted toward the third phase plate 417 and the light flux combining unit 413 .
- the first light flux L 1 is diffracted for four times only by the first diffraction grating 11 , and diffraction directions in two times among these are reversed.
- a phase in the first light flux L 1 which phase is diffracted by the first diffraction grating 11 is canceled.
- the first light flux L 1 that enters the light flux combining unit 413 is transmitted through the light flux combining unit 413 .
- the second light flux L 2 that enters the light flux combining unit 413 is reflected by the light flux combining unit 413 .
- the first light flux L 1 and the second light flux L 2 are superposed by the light flux combining unit 413 .
- the first light flux L 1 and the second light flux L 2 are superposed as s-polarized light and p-polarized light orthogonal to each other and are emitted to the light receiving unit 7 .
- Optical path lengths from the light flux dividing unit 13 to the light flux combining unit 413 in the first light flux L 1 and the second light flux L 2 divided by the light flux dividing unit 13 are set to be equal.
- the light receiving unit 7 has a configuration similar to that of the light receiving unit 7 according to the first embodiment, a description thereof is omitted.
- an interference signal of A ⁇ cos (4 ⁇ B ⁇ K2z+ ⁇ ) is acquired in the light receiving unit 7 .
- A is amplitude of interference
- K2 is a wave number of the second diffraction grating 12 which number is expressed by 2 ⁇ /d T .
- z indicates a movement amount, in a grating vector direction of the second diffraction grating 12 , in the first light flux L 1 that enters the second diffraction grating 12 .
- d R is a grating pitch of the first diffraction grating 11
- d T is a grating pitch of the second diffraction grating 12 .
- ⁇ indicates an initial phase.
- the other configurations are similar to those of the displacement detecting device 1 according to the first embodiment, a description thereof is omitted. According to the displacement detecting device 401 having such a configuration, it is also possible to acquire an effect similar to that of the displacement detecting device 1 according to the first embodiment described above.
- FIG. 16 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the sixth embodiment
- FIG. 17 is a view for describing a relationship between incident angles and diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the sixth embodiment.
- a displacement detecting device 501 according to the sixth embodiment is different from the displacement detecting device 1 according to the first embodiment in a point that a reflection-type diffraction grating is used as a second diffraction grating.
- the same sign is assigned to a common part with the displacement detecting device 1 according to the first embodiment, and an overlapped description is omitted.
- the displacement detecting device 501 includes a head 503 , a measured member 2 in which a first diffraction grating 11 is provided, and a relative positional information outputting means 504 .
- the head 503 includes a displacement detecting unit 505 , a light source 6 , and a light receiving unit 7 provided in the displacement detecting unit 505 .
- the displacement detecting unit 505 includes a second diffraction grating 512 , a light flux dividing unit 13 , a first phase plate 17 , a second phase plate 18 , and a reference mirror 14 . Note that since the light flux dividing unit 13 , the reference mirror 14 , the first phase plate 17 , and the second phase plate 18 have configurations similar to those of the displacement detecting device 1 according to the first embodiment, a description thereof is omitted.
- the second diffraction grating 512 is a reflection-type diffraction grating that reflects and diffracts an incident first light flux L 1 . Then, the second diffraction grating 512 reflects and diffracts the first light flux L 1 , which is diffracted by the first diffraction grating 11 , toward the first diffraction grating 11 again.
- the second diffraction grating 512 has a function as an object reflecting member. As a result, it becomes unnecessary to newly provide a mirror, a prism, or the like as an object reflecting member and it is possible to reduce the number of components.
- an optical path length from the incident point P 2 on the first diffraction grating 11 to the incident point Q 2 on the second diffraction grating 512 becomes longer for a length M 1 than an optical path length from the incident point P 1 on the first diffraction grating 11 to the incident point Q 1 on the second diffraction grating 512 of when the first diffraction grating 11 is not moved in the third direction Z.
- the displacement detecting device 501 Since the other configurations are similar to those of the displacement detecting device 1 according to the first embodiment, a description thereof is omitted. According to the displacement detecting device 501 having such a configuration, it is also possible to acquire an effect similar to that of the displacement detecting device 1 according to the first embodiment described above.
- FIG. 18 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the seventh embodiment
- FIG. 19 is a view for describing a relationship between incident angles and diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the seventh embodiment.
- a reflection-type diffraction grating is used as a second diffraction grating in a displacement detecting device 601 according to the seventh embodiment.
- the same sign is assigned to a common part with the displacement detecting device 1 according to the first embodiment, and an overlapped description is omitted.
- the displacement detecting device 601 includes a head 603 , a measured member 2 in which a first diffraction grating 11 is provided, and a relative positional information outputting means 604 .
- the head 603 includes a displacement detecting unit 605 , a light source 6 , and a light receiving unit 7 provided in the displacement detecting unit 605 .
- the displacement detecting unit 605 includes a second diffraction grating 612 , a light flux dividing unit 13 , a first phase plate 17 , a second phase plate 18 , a reference mirror 14 , and an object mirror 615 .
- the light flux dividing unit 13 , the reference mirror 14 , the first phase plate 17 , and the second phase plate 18 have configurations similar to those of the displacement detecting device 1 according to the first embodiment, a description thereof is omitted.
- the second diffraction grating 612 is a reflection-type diffraction grating that reflects and diffracts an incident first light flux L 1 . Then, the second diffraction grating 612 reflects and diffracts the first light flux L 1 , which is diffracted by the first diffraction grating 11 , toward the object mirror 615 . The object mirror 615 reflects the incident first light flux L 1 toward the second diffraction grating 612 again.
- the object mirror 615 is added to the displacement detecting device 501 according to the sixth embodiment.
- the object mirror 615 it is possible to easily perform operation of making an optical path length of the first light flux L 1 and an optical path length of a second light flux L 2 identical.
- an optical path length from the incident point P 2 on the first diffraction grating 11 to the incident point Q 2 on the second diffraction grating 612 becomes longer for a length M 1 than an optical path length from the incident point P 1 on the first diffraction grating 11 to the incident point Q 1 on the second diffraction grating 612 of when the first diffraction grating 11 is not moved in the third direction Z.
- a distance from the incident point Q 2 on the second diffraction grating 612 to the object mirror 615 becomes longer for a length M 2 than an optical path length from the incident point Q 1 on the second diffraction grating 612 to the object mirror 615 of when the first diffraction grating 11 is not moved in the third direction Z.
- the diffraction angle ⁇ of the first diffraction grating 11 and the diffraction angle ⁇ 2 of the second diffraction grating 612 satisfy the above expression 13. Accordingly, it is possible to make the optical path length of the first light flux L 1 constant even when the first diffraction grating 11 is moved in the third direction Z.
- each of the second diffraction grating 512 according to the sixth embodiment and the second diffraction grating 612 according to the seventh embodiment for example, a so-called blazed grating in which a sectional shape of a groove is formed in a serrated shape is preferably used. With this arrangement, it is possible to improve diffraction efficiency with respect to a specific wavelength.
- the other configurations are similar to those of the displacement detecting device 1 according to the first embodiment, a description thereof is omitted. According to the displacement detecting device 601 having such a configuration, it is also possible to acquire an effect similar to that of the displacement detecting device 1 according to the first embodiment described above.
- FIG. 20 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the eighth embodiment
- FIG. 21 is a view for describing a relationship between diffraction angles of a first diffraction grating and a second diffraction grating.
- a displacement detecting device 2001 according to the eighth embodiment is different from the displacement detecting device 1 according to the first embodiment in a point that first and second emission positions on a measured surface 2 a of a measured member 2 are different.
- the same sign is assigned to a common part with the displacement detecting device 1 according to the first embodiment, and an overlapped description is omitted.
- the displacement detecting device 2001 illustrated in FIG. 20 is a displacement detecting device that detects displacement (movement amount) of when at least one of a head and a measured member is moved.
- the displacement detecting device 2001 includes a first diffraction grating 11 provided on a measured surface 2 a of a measured member 2 , a head 2003 , and a relative positional information outputting means 2004 .
- the relative positional information outputting means 2004 may be housed in the head 2003 or arranged in a mobile information processing terminal or a personal computer (PC) provided outside the head 2003 .
- the relative positional information outputting means 2004 has a configuration similar to that of the relative positional information outputting means 4 according to the first embodiment, a description thereof is omitted here.
- the measured member 2 has a configuration similar to that of the measured member 2 according to the first embodiment, a description thereof is omitted here.
- the first diffraction grating 11 provided in this measured member 2 diffracts light emitted from the head 2003 and returns the light at a predetermined diffraction angle to the head 2003 again.
- the head 2003 includes a displacement detecting unit 2005 , a light source 6 , and a light receiving unit 7 provided in the displacement detecting unit 2005 .
- the light receiving unit 7 may be arranged in the displacement detecting unit 2005 or arranged outside the displacement detecting unit 2005 . Since the light source 6 has a configuration similar to that of the light source 6 according to the first embodiment, a description thereof is omitted here. Also, for example, the light source 6 emits circularly polarized light that rotates around an optical axis.
- Light L emitted from the light source 6 enters the displacement detecting unit 2005 .
- a lens 16 including a collimating lens or the like is arranged between the light source 6 and the displacement detecting unit 2005 .
- the lens 16 collimates the light L emitted from the light source 6 into parallel light.
- the light L collimated into the parallel light by the lens 16 enters the displacement detecting unit 2005 .
- the displacement detecting unit 2005 emits the light L, which is emitted from the light source 6 , toward the first diffraction grating 11 of the measured member 2 and guides the light L returned from the measured member 2 to the light receiving unit 7 .
- the displacement detecting unit 2005 includes a second diffraction grating 12 , a light flux dividing unit 2013 , a light flux parallel branch unit 40 , a light flux combining unit 50 , a reference mirror 14 indicating an example of a reference light reflecting member, an object mirror 15 indicating an example of an object light reflecting member, a first phase plate 17 , and a second phase plate 18 .
- the light flux dividing unit 2013 includes, for example, a semitransparent mirror or a beam splitter.
- the light L emitted from the light source and collimated into the parallel light by the lens 16 enters the light flux dividing unit 2013 .
- the light flux dividing unit 2013 divides the light L into two light fluxes that are a first light flux L 1 as object light and a second light flux L 2 as reference light.
- the light L transmitted through the light flux dividing unit 2013 becomes the first light flux L 1
- the light L reflected by the light flux dividing unit 2013 becomes the second light flux L 2 .
- the first light flux L 1 transmitted through the light flux dividing unit 2013 advances toward the first diffraction grating 11
- the second light flux L 2 reflected by the light flux dividing unit 2013 advances toward the reference mirror 14 through the light flux combining unit 50 .
- the light flux dividing unit 2013 divides the light L into the first light flux L 1 and the second light flux L 2 , and a light quantity ratio thereof is preferably a ratio in which a light quantity on a side of the first diffraction grating 11 and that on a side of the reference mirror 14 become the same in entrance to the light receiving unit 7 described later.
- a polarizing plate may be provided between the light source 6 and the light flux dividing unit 2013 . Accordingly, it is possible to remove leakage light that exists slightly as a polarization component orthogonal to the s-polarized light and the p-polarized light, and a noise.
- a semitransparent mirror or a beam splitter as the light flux dividing unit 2013
- a polarization beam splitter may be used as the light flux dividing unit 2013 .
- the light source 6 , the lens 16 , and the light flux dividing unit 2013 are arranged in such a manner that an advancing direction of the light transmitted through the light flux dividing unit 2013 , that is, the first light flux L 1 becomes in parallel with a third direction Z.
- the first light flux L 1 transmitted through the light flux dividing unit 2013 vertically enters the measured surface 2 a of the measured member 2 , that is, the first diffraction grating 11 . Accordingly, even when the measured member 2 is displaced in the third direction Z, a position of an incident point P 11 of the first light flux L 1 that enters the first diffraction grating 11 is not changed on the first diffraction grating 11 .
- the light flux parallel branch unit 40 is arranged in a position where the first light flux L 1 that is diffracted by the first diffraction grating 11 and that returns to the displacement detecting unit 5 again enters.
- the light flux parallel branch unit 40 includes a polarization adjustment phase plate 42 , a reflection mirror 43 including a triangular prism, and a polarization beam splitter 44 .
- the polarization adjustment phase plate 42 changes a polarization direction of passing light and changes a polarization state of the incident first light flux L 1 into s-polarized light.
- the reflection mirror 43 is arranged on a light emission side of the polarization adjustment phase plate 42 .
- the reflection mirror 43 reflects the first light flux L 1 , which passes through the polarization adjustment phase plate 42 , toward the polarization beam splitter 44 .
- the polarization beam splitter 44 reflects s-polarized light and transmits p-polarized light.
- a reflection/transmission surface 44 a which reflects and transmits light, of the polarization beam splitter 44 and a reflection surface of the reflection mirror 43 are arranged in parallel.
- a polarization state of the first light flux L 1 reflected by the reflection mirror 43 is adjusted to s-polarized light by the polarization adjustment phase plate 42 .
- the polarization beam splitter 44 reflects the first light flux L 1 , which is reflected by the reflection mirror 43 , toward the second diffraction grating 12 .
- the first light flux L 1 transmitted through the second diffraction grating 12 and the first phase plate 17 and reflected by the object mirror 15 enters the polarization beam splitter 44 of the light flux parallel branch unit 40 again.
- a polarization direction of the first light flux L 1 that enters the light flux parallel branch unit 40 again is changed to p-polarized light.
- the light flux parallel branch unit 40 transmits the first light flux L 1 that enters the polarization beam splitter 44 again.
- the first light flux L 1 transmitted through the light flux parallel branch unit 40 enters the first diffraction grating 11 again.
- the light flux parallel branch unit 40 sets, as an outgoing optical path, an optical path in which the first light flux L 1 is diffracted by the first diffraction grating 11 and enters the light flux parallel branch unit 40 . Then, an optical path in which the first light flux L 1 diffracted by the second diffraction grating 12 is transmitted through the light flux parallel branch unit 40 and enters the first diffraction grating 11 is set as an incoming optical path.
- the light flux parallel branch unit 40 moves the outgoing optical path and the incoming optical path in parallel in such a manner that the outgoing optical path and the incoming optical path of the first light flux L 1 do not become identical. Thus, a position where the first light flux L 1 enters the first diffraction grating 11 becomes an incident point P 12 different from the incident point P 11 in the outgoing optical path.
- the second diffraction grating 12 is arranged in a position where the first light flux L 1 passing through the light flux parallel branch unit 40 enters.
- the second diffraction grating 12 is arranged in such a manner that a plane thereof is inclined in the third direction Z.
- the second diffraction grating 12 is a transmission-type diffraction grating that transmits light and diffracts the transmitted light. Note that a grating pitch d T and a diffraction angle ⁇ of the second diffraction grating 12 will be described later.
- the object mirror 15 is arranged in a direction, in which the first light flux L 1 incident from the first diffraction grating 11 is transmitted, in the second diffraction grating 12 . Moreover, the first phase plate 17 is arranged between the second diffraction grating 12 and the object mirror 15 .
- the first phase plate 17 changes a polarization direction of passing light and includes, for example, a quarter wavelength plate.
- passing light is p-polarized light
- the first phase plate 17 changes the light into circularly polarized light that rotates in a first direction with an advancing direction as a center axis.
- passing light is changed into s-polarized light.
- passing light is changed into circularly polarized light that rotates in a second direction opposite to the first direction with an advancing direction as a center axis.
- passing light is changed into p-polarized light.
- the first light flux L 1 transmitted through the first phase plate 17 enters the object mirror 15 with a polarization direction thereof being changed by the first phase plate 17 .
- the object mirror 15 is arranged in a position where the first light flux L 1 transmitted through the second diffraction grating 12 and the first phase plate 17 enters a reflection surface thereof vertically. Then, since the first light flux L 1 vertically enters the object mirror 15 , the object mirror 15 reflects the first light flux L 1 in such a manner that an optical path thereof in incidence after transmission through the second diffraction grating 12 and an optical path thereof in incidence to the second diffraction grating 12 again after reflection become identical.
- the first light flux L 1 reflected by the object mirror 15 is transmitted through the first phase plate 17 and the second diffraction grating 12 and enters the light flux parallel branch unit 40 again.
- the first light flux L 1 passing through the light flux parallel branch unit 40 enters the first diffraction grating 11 again.
- a polarization direction of the first light flux L 1 that enters the light flux parallel branch unit 40 again is changed to p-polarized light by the first phase plate 17 .
- the light flux parallel branch unit 40 transmits the first light flux L 1 that enters the polarization beam splitter 44 again. Then, the first light flux L 1 transmitted through the light flux parallel branch unit 40 enters the first diffraction grating 11 again.
- the light flux parallel branch unit 40 sets, as an outgoing optical path, an optical path in which the first light flux L 1 is diffracted by the first diffraction grating 11 and enters the light flux parallel branch unit 40 . Also, an optical path in which the first light flux L 1 diffracted by the second diffraction grating 12 is transmitted through the light flux parallel branch unit 40 and enters the first diffraction grating 11 is set as an incoming optical path.
- the light flux parallel branch unit 40 moves the outgoing optical path and the incoming optical path in parallel in such a manner that the outgoing optical path and the incoming optical path of the first light flux L 1 do not become identical.
- a position where the first light flux L 1 enters the first diffraction grating 11 becomes an incident point P 12 different from the incident point P 11 in the outgoing optical path.
- the first light flux L 1 is diffracted twice by each of the first diffraction grating 11 and the second diffraction grating 12 in the outgoing optical path and the incoming optical path. Then, the first light flux L 1 is diffracted again by the first diffraction grating 11 and enters the light flux combining unit 50 .
- the light flux combining unit 50 is arranged between the light flux dividing unit 2013 and the reference mirror 14 .
- the light flux combining unit 50 includes, for example, a polarization adjustment phase plate 52 and a polarization beam splitter 53 .
- the polarization adjustment phase plate 52 is arranged between the polarization beam splitter 53 and the light flux dividing unit 2013 .
- the polarization adjustment phase plate 52 changes a polarization direction of passing light and changes a polarization state of the incident second light flux L 2 into p-polarized light.
- the polarization beam splitter 53 reflects s-polarized light and transmits p-polarized light. Then, the polarization beam splitter 53 transmits a p-polarized second light flux L 2 passing through the polarization adjustment phase plate 52 .
- the second light flux L 2 transmitted through the polarization beam splitter 53 of the light flux combining unit 50 advances toward the reference mirror 14 .
- the reference mirror 14 is arranged in an advancing direction of the second light flux L 2 divided by the light flux dividing unit 2013 and transmitted through the light flux combining unit 50 .
- the reference mirror 14 is arranged in such a manner that a reflection surface thereof is in parallel with a surface, which emits the second light flux L 2 , of the light flux dividing unit 2013 and a reflection/transmission surface, which reflects and transmits light, of the polarization beam splitter 53 of the light flux combining unit 50 . That is, the reference mirror 14 is arranged in a position where the second light flux L 2 vertically enters the reflection surface thereof. Then, since the second light flux L 2 enters the reference mirror 14 vertically, the reference mirror 14 reflects the second light flux L 2 in such a manner that an optical path in the entrance and an optical path after the reflection become identical.
- the second phase plate 18 is arranged between the light flux combining unit 50 and the reference mirror 14 .
- the second phase plate 18 changes a polarization direction of passing light and includes, for example, a quarter wavelength plate.
- passing light is p-polarized light
- the second phase plate 18 changes the light into circularly polarized light that rotates in a first direction with an advancing direction as a center axis.
- passing light is changed into s-polarized light.
- passing light is changed into circularly polarized light that rotates in a second direction opposite to the first direction with an advancing direction as a center axis. Then, in a case of being circularly polarized light that rotates in the second direction, passing light is changed into p-polarized light.
- the reference mirror 14 and the object mirror 15 are arranged in such a manner that a length of an optical path in which the first light flux L 1 from the light flux dividing unit 2013 is reflected by the object mirror 15 and enters the light flux combining unit 50 , and a length of an optical path in which the second light flux L 2 from the light flux dividing unit 2013 is reflected by the reference mirror 14 and enters the light flux combining unit 50 become the same.
- the second light flux L 2 reflected by the reference mirror 14 passes through an optical path that is the same with an outgoing optical path, passes through the second phase plate 18 , and enters the light flux combining unit 50 again.
- the second light flux L 2 is changed from p-polarized light into s-polarized light by passing through the second phase plate 18 twice.
- the first light flux L 1 is changed from s-polarized light into p-polarized light by passing through the first phase plate 17 twice.
- the light flux combining unit 50 transmits the p-polarized first light flux L 1 toward the light receiving unit 7 and reflects the s-polarized second light flux L 2 toward the light receiving unit 7 . Accordingly, it is possible to superpose the first light flux L 1 and the second light flux L 2 by the light flux combining unit 50 . Then, the first light flux L 1 and the second light flux L 2 superposed by the light flux combining unit 50 are emitted toward the light receiving unit 7 .
- the light receiving unit 7 has a configuration similar to that of the light receiving unit 7 according to the first embodiment, a description thereof is omitted here. Also, the relative positional information outputting means 2004 is connected to the light receiving unit 7 .
- the light receiving unit 7 outputs interference signals acquired by a first light receiving element 31 , a second light receiving element 32 , a third light receiving element 33 , and a fourth light receiving element 34 to the relative positional information outputting means 2004 .
- a first light flux L 1 enters the first diffraction grating 11 vertically in the third direction Z.
- a grating vector direction S 1 of the first diffraction grating 11 is in parallel with a first direction X as illustrated in FIG. 2 .
- the first diffraction grating 11 performs diffraction at a diffraction angle ⁇ .
- the diffraction angle ⁇ of the first diffraction grating 11 can be calculated by the expressions 1 and 2 described above.
- the first light flux L 1 diffracted by the first diffraction grating 11 enters the second diffraction grating 12 and is diffracted by the second diffraction grating 12 .
- a grating vector direction of the second diffraction grating 12 in this case is on a plane formed by the first direction X and the third direction Z.
- the grating vector direction of the second diffraction grating 12 is inclined at an angle ⁇ T with respect to an incident angle of the first light flux L 1 to the first diffraction grating 11 . That is, the grating vector direction of the second diffraction grating 12 is inclined at the angle ⁇ T with respect to the third direction Z.
- the second diffraction grating 12 diffracts the first light flux L 1 at a diffraction angle ⁇ when the second diffraction grating 12 satisfies the Bragg condition.
- the grating pitch d T or the diffraction angle ⁇ of the second diffraction grating 12 is set in such a manner as to satisfy the above-described expressions 3 and 4.
- ⁇ is a wavelength of the first light flux L 1 .
- the second diffraction grating 12 When the second diffraction grating 12 satisfies the Bragg condition, it is possible to acquire extremely high diffraction efficiency, for example, by using a second diffraction grating 12 M of the transmission-type volume hologram described above (see FIG. 5A ).
- a second diffraction grating 12 M of the transmission-type volume hologram described above there is limitation in designing of an incident angle ⁇ to the second diffraction grating 12 , and the grating pitch d T .
- a thin transmission-type diffraction grating may be used as the second diffraction grating 12 instead of the volume hologram.
- the first light flux L 1 diffracted for the second time by the second diffraction grating 12 (first diffraction is by first diffraction grating 11 ) is reflected by the object mirror 15 and enters the second diffraction grating 12 again.
- first diffraction is by first diffraction grating 11
- second diffraction grating 12 again. Note that as illustrated in FIG. 20 and FIG. 21 , in a case where the measured member 2 is not displaced in the third direction Z, a position of an incident point Q at which the first light flux L 1 enters the second diffraction grating 12 is not changed.
- the first light flux L 1 that is diffracted for the third time by the second diffraction grating 12 passes through the light flux parallel branch unit 40 , enters the first diffraction grating 11 , and is diffracted for the fourth time by the first diffraction grating 11 .
- an optical path length of the first light flux L 1 becomes shorter for the length ⁇ Z at a time point of entrance to an incident point P 21 on the first diffraction grating 11 .
- the first light flux L 1 vertically enters the measured surface 2 a of the measured member 2 , that is, the first diffraction grating 11 .
- positions of the incident points P 11 and P 21 of the first light flux L 1 that enters the first diffraction grating 11 are not changed on the first diffraction grating 11 .
- an optical path length of the first light flux L 1 in the light flux parallel branch unit 40 is not changed even when the first diffraction grating 11 is moved in the first direction X or the third direction Z.
- an optical path length from the incident point P 21 on the first diffraction grating 11 to the incident point Q 2 on the second diffraction grating 12 through the light flux parallel branch unit 40 becomes longer for a length M 1 than an optical path length from the incident point P 11 on the first diffraction grating 11 to the incident point Q 1 on the second diffraction grating 12 through the light flux parallel branch unit 40 of when the first diffraction grating 11 is not moved in the third direction Z.
- a distance from the incident point Q 2 on the second diffraction grating 12 to the object mirror 15 becomes longer for a length M 2 than an optical path length from the incident point Q 1 on the second diffraction grating 12 to the object mirror 15 of when the first diffraction grating 11 is not moved in the third direction Z.
- each of the diffraction angle ⁇ of the first diffraction grating 11 and the diffraction angle ⁇ of the second diffraction grating 12 is set to be a value satisfying the above expression 15. Accordingly, it is possible to make the optical path length of the first light flux L 1 constant even when the first diffraction grating 11 is moved in the third direction Z.
- a grating pitch d R of the first diffraction grating 11 is 1 an incident angle of the first light flux L 1 to the first diffraction grating 11 is 0 degrees
- a grating pitch of the second diffraction grating 12 is d T , the diffraction angle ⁇ of the first diffraction grating 11 ⁇ 52.2° and the diffraction angle ⁇ of the second diffraction grating 12 ⁇ 45.9°.
- light L emitted from the light source 6 is collimated by the lens 16 and becomes parallel light.
- the parallel light L collimated by the lens 16 enters the light flux dividing unit 2013 .
- the light that enters the light flux dividing unit 2013 is divided into a first light flux L 1 and a second light flux L 2 .
- the second light flux L 2 reflected by the light flux dividing unit 2013 enters the light flux combining unit 50 .
- the second light flux L 2 is changed into p-polarized light by the polarization adjustment phase plate 52 of the light flux combining unit 50 .
- the second light flux L 2 changed into p-polarized light enters the polarization beam splitter 53 of the light flux combining unit 50 .
- the polarization beam splitter 53 reflects s-polarized light and transmits p-polarized light among pieces of light.
- the second light flux L 2 that enters the polarization beam splitter 53 is transmitted through the polarization beam splitter 53 .
- the second light flux L 2 passes through the light flux combining unit 50 and is emitted to the second phase plate 18 . Since the second light flux L 2 is p-polarized light, the second light flux L 2 is changed into circularly polarized light that rotates in a first direction with an advancing direction as a center axis when passing through the second phase plate 18 . The second light flux L 2 passing through the second phase plate 18 is emitted to the reference mirror 14 .
- the second light flux L 2 emitted to the reference mirror 14 is reflected by the reference mirror 14 and emitted again to the second phase plate 18 .
- a polarization direction of the second light flux L 2 here is circularly polarized light rotating in the first direction with the advancing direction as the center axis.
- the second light flux L 2 is changed by the second phase plate 18 into s-polarized light orthogonal to p-polarized light that is in an outgoing polarization direction.
- the second light flux L 2 passing through the second phase plate 18 enters the polarization beam splitter 53 of the light flux combining unit 50 . Since the polarization direction of the second light flux L 2 is s-polarized light, the second light flux L 2 is reflected by the polarization beam splitter 53 of the light flux combining unit 50 .
- the first light flux L 1 transmitted through the light flux dividing unit 2013 vertically enters the measured surface 2 a of the measured member 2 , that is, the incident point P 11 of the first diffraction grating 11 . Then, as illustrated in FIG. 3 , the first light flux L 1 is diffracted at the diffraction angle ⁇ by the first diffraction grating 11 . The first light flux L 1 diffracted for the first time enters the light flux parallel branch unit 40 .
- a polarization state of the first light flux L 1 is changed by the polarization adjustment phase plate 42 of the light flux parallel branch unit 40 into s-polarized light.
- the first light flux L 1 changed into the s-polarized light is reflected by the reflection mirror 43 and enters the polarization beam splitter 44 . Since being the s-polarized light, the first light flux L 1 is reflected by the polarization beam splitter 44 .
- the first light flux L 1 reflected by the polarization beam splitter 44 of the light flux parallel branch unit 40 enters the incident point Q (see FIG. 20 ) on the second diffraction grating 12 at the incident angle ⁇ .
- the first light flux L 1 is diffracted at the diffraction angle ⁇ by the second diffraction grating 12 .
- the first light flux L 1 diffracted by the second diffraction grating 12 vertically enters the object mirror 15 . Then, the first light flux L 1 is reflected by the object mirror 15 toward the second diffraction grating 12 again.
- the first light flux L 1 enters the second diffraction grating 12 at the incident angle ⁇ .
- the first light flux L 1 enters the incident point Q on the second diffraction grating 12 which point is the same with that in the outgoing optical path.
- third diffraction is performed by the second diffraction grating 12 and the first light flux L 1 enters the polarization beam splitter 44 of the light flux parallel branch unit 40 .
- the first phase plate 17 is arranged between the second diffraction grating 12 and the object mirror 15 .
- the first light flux L 1 passing through the second diffraction grating 12 is changed by the first phase plate 17 into circularly polarized light that rotates in a second direction with an advancing direction as a center axis.
- the first light flux L 1 reflected by the object mirror 15 is changed from the circularly polarized light rotating in the second direction into p-polarized light when passing through the first phase plate 17 again.
- the first light flux L 1 Since a polarization direction of the first light flux L 1 that enters the light flux parallel branch unit 40 again is changed by the first phase plate 17 into p-polarized light, the first light flux L 1 is transmitted through the polarization beam splitter 44 of the light flux parallel branch unit 40 .
- the light flux parallel branch unit 40 moves an outgoing optical path and an incoming optical path in parallel in such a manner that the outgoing optical path and the incoming optical path of the first light flux L 1 do not become identical.
- the first light flux L 1 passes through the light flux parallel branch unit 40 and enters an incident point P 12 , which is different from an incident point P 11 in the outgoing optical path, at an incident angle ⁇ on the first diffraction grating 11 .
- the first light flux L 1 is diffracted for the fourth time by the first diffraction grating 11 and emitted to the light flux combining unit 50 . Since a polarization direction of the first light flux L 1 here is p-polarized light, the first light flux L 1 is transmitted through the polarization beam splitter 53 of the light flux combining unit 50 . Then, a light flux in which the linearly polarized first light flux L 1 and second light flux L 2 that are superposed by the light flux combining unit 50 and that are orthogonal to each other are superposed is emitted to the light receiving unit 7 .
- the light flux is collected by a condenser lens 21 and emitted to a semitransparent mirror 22 .
- the semitransparent mirror 22 divides the light flux into two pieces of light.
- a light flux transmitted through the semitransparent mirror 22 enters a first polarization beam splitter 24 .
- the first polarization beam splitter 24 is arranged in an inclined manner in such a manner that polarization directions of a first light flux L 1 and a second light flux L 2 polarization directions of which are different from each other by 90 degrees are inclined by 45 degrees with respect to an incident surface of the first polarization beam splitter 24 . Accordingly, the first light flux L 1 and the second light flux L 2 respectively have a p polarization component and an s polarization component with respect to the first polarization beam splitter 24 . Thus, in the first light flux L 1 and the second light flux L 2 transmitted through the first polarization beam splitter 24 , pieces of polarized light having the same polarization direction interfere with each other. Thus, it is possible to make the first light flux L 1 and the second light flux L 2 interfere with each other by the first polarization beam splitter 24 .
- interference light between the first light flux L 1 and the second light flux L 2 transmitted through the first polarization beam splitter 24 is received by the first light receiving element 31 .
- the interference light between the first light flux L 1 and the second light flux L 2 reflected by the first polarization beam splitter 24 is received by the second light receiving element 32 .
- interference signals photoelectrically converted by the first light receiving element 31 and the second light receiving element 32 become signals with phases different from each other by 180 degrees.
- interference signals acquired by the first light receiving element 31 and the second light receiving element 32 interference signals of A ⁇ cos (2 ⁇ K1x+2 ⁇ B ⁇ K2z+ ⁇ ) are acquired.
- A is amplitude of interference
- K1 is a wave number of the first diffraction grating 11 which number is expressed by 2 ⁇ /d R .
- x indicates a movement amount of the first diffraction grating 11 , that is, a relative displacement amount in the first direction X of the head 2003 and the measured member 2 .
- K2 is a wave number of the second diffraction grating 12 which number is expressed by 2 ⁇ /d T .
- z indicates a movement amount, in a grating vector direction of the second diffraction grating 12 , in the first light flux L 1 that enters the second diffraction grating 12 .
- d R is a grating pitch of the first diffraction grating 11
- d T is a grating pitch of the second diffraction grating 12 .
- ⁇ indicates an initial phase.
- the incident point of the first light flux L 1 emitted to the second diffraction grating 12 is moved for Z/2 in the grating vector direction on the second diffraction grating 12 . That is, the first light flux L 1 is moved for Z/2 in the grating vector direction on the second diffraction grating 12 .
- a phase of K2z is added to the first light flux L 1 , and interference light in which lightness/darkness of light in one cycle is generated is received by the first light receiving element 31 and the second light receiving element 32 .
- the first light flux L 1 enters the first diffraction grating 11 in parallel with the third direction Z.
- the first light flux L 1 vertically enters the first diffraction grating 11 .
- the incident point of the first light flux L 1 on the first diffraction grating 11 is not changed.
- only a phase diffracted by the second diffraction grating 12 is added to the first light flux L 1 .
- each of the diffraction angle ⁇ of the first diffraction grating 11 and the diffraction angle ⁇ of the second diffraction grating 12 is set to be a value satisfying the above expression 15.
- the interference signals acquired by the first light receiving element 31 and the second light receiving element 32 do not have a component related to a wavelength of the light source 6 .
- interference intensity is not influenced.
- a light flux reflected by the semitransparent mirror 22 enters a light receiving-side phase plate 23 .
- a light flux including the first light flux L 1 and the second light flux L 2 that are linearly-polarized light with polarization directions being different from each other by 90 degrees becomes pieces of circularly polarized light that rotate reversely.
- the pieces of circularly polarized light rotating reversely are superposed with each other, become linearly polarized light, and enter the second polarization beam splitter 25 .
- An s polarization component of this linearly polarized light is reflected by the second polarization beam splitter 25 and received by the third light receiving element 33 . Also, a p polarization component is transmitted through the second polarization beam splitter 25 and received by the fourth light receiving element 34 .
- the linearly polarized light that enters the second polarization beam splitter 25 is generated by superposition of the pieces of circularly polarized light rotating reversely. Then, a polarization direction of the linearly-polarized light that enters the second polarization beam splitter 25 is rotated for 1 ⁇ 2 when the head 2003 and the measured member 2 are relatively moved for d R /2 in the first direction X. Also, when the head 2003 and the measured member 2 are relatively moved for d T /(2 ⁇ B) in the first direction X, the polarization direction of the linearly-polarized light that enters the second polarization beam splitter 25 is rotated for 1 ⁇ 2.
- interference signals of A ⁇ cos (2 ⁇ K1x+2 ⁇ B ⁇ K2z+ ⁇ ′) are acquired in the third light receiving element 33 and the fourth light receiving element 34 .
- ⁇ ′ is an initial phase.
- the signals photoelectrically converted in the third light receiving element 33 and the fourth light receiving element 34 have phases different from each other by 180 degrees.
- the second polarization beam splitter 25 that divides light fluxes received by the third light receiving element 33 and the fourth light receiving element 34 is arranged in such a manner as to be inclined by 45 degrees with respect to the first polarization beam splitter 24 .
- signals acquired in the third light receiving element 33 and the fourth light receiving element 34 have phases deviated by 90 degrees from those of the signals acquired in the first light receiving element 31 and the second light receiving element 32 .
- the signals acquired by these light receiving elements are calculated by the relative positional information outputting means 2004 , and a relative displacement amount of the head 2003 and the measured member 2 is counted. Accordingly, it is possible to detect a relative displacement amount of the head 2003 and the measured member 2 .
- an interference signal acquired in the light receiving unit 7 of the displacement detecting unit 2005 includes displacement information in the first direction X and the third direction Z similarly to the displacement detecting device 1 according to the first embodiment.
- a device that detects relative displacement in the first direction X of the head 2003 and the measured member 2 of a case where the head 2003 and the measured member 2 are relatively moved only in the first direction X is possible.
- a device that detects relative displacement in the third direction Z of the head 2003 or the measured member 2 of a case where the head 2003 and the measured member 2 are relatively moved only in the third direction Z is possible. That is, the displacement detecting device 2001 according to the eighth embodiment has two usages in one device similarly to the displacement detecting device 1 according to the first embodiment.
- FIG. 22 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the ninth embodiment.
- a displacement detecting device 2101 according to the ninth embodiment is a displacement detecting device that can output two-dimensional displacement information in a first direction X and a third direction Z Then, here, the same sign is assigned to a common part with the displacement detecting device 2001 according to the eighth embodiment, and an overlapped description is omitted.
- the displacement detecting device 2101 includes a measured member 2 in which a first diffraction grating 111 is provided, a head 2103 , and a relative positional information outputting means 2104 .
- the head 2103 and the measured member 2 are configured in a manner relatively movable in two directions that are the first direction X and the third direction Z.
- the head 2103 includes a first displacement detecting unit 2005 A, a second displacement detecting unit 2005 B, a light source 6 , a lens 16 , a first light flux dividing unit 2113 A, and a second light flux dividing unit 2113 B.
- the first displacement detecting unit 2005 A is arranged on one side in the first direction X of the head 2103 and the second displacement detecting unit 2005 B is arranged on the other side in the first direction X of the head 2103 .
- the light source 6 , the lens 16 , the first light flux dividing unit 2113 A, and the second light flux dividing unit 2113 B are arranged in the first direction X between the first displacement detecting unit 2005 A and the second displacement detecting unit 2005 B.
- Each of the first light flux dividing unit 2113 A and the second light flux dividing unit 2113 B includes a semitransparent mirror or a beam splitter.
- the first light flux dividing unit 2113 A is arranged on a side of the measured member 2 in the third direction Z of the second light flux dividing unit 2113 B. That is, the second light flux dividing unit 2113 B is arranged on a side of the light source 6 of the first light flux dividing unit 2113 A.
- Each of the first light flux dividing unit 2113 A and the second light flux dividing unit 2113 B divides incident light into two that are reflected light and transmitted light.
- Light L emitted from the light source 6 enters the second light flux dividing unit 2113 B.
- a light flux reflected by the second light flux dividing unit 2113 B becomes a second light flux L 2 B that is reference light used by the second displacement detecting unit 2005 B.
- the second light flux L 2 B reflected by the second light flux dividing unit 2113 B is emitted to the other side in the first direction X.
- a light flux combining unit 50 B and a reference mirror 14 B of the second displacement detecting unit 2005 B (described later) are arranged on the other side in the first direction X of the second light flux dividing unit 2113 B.
- the second light flux L 2 B is emitted toward the light flux combining unit 50 B and the reference mirror 14 B of the second displacement detecting unit 2005 B (described later). Also, light transmitted through the second light flux dividing unit 2113 B enters the first light flux dividing unit 2113 A.
- a light flux reflected by the first light flux dividing unit 2113 A becomes a second light flux L 2 A that is reference light used in the first displacement detecting unit 2005 A.
- the second light flux L 2 A reflected by the first light flux dividing unit 2113 A is emitted toward one side in the first direction X.
- a light flux combining unit 50 A and a reference mirror 14 A of the first displacement detecting unit 2005 A are arranged on the one side in the first direction X of the first light flux dividing unit 2113 A.
- the second light flux L 2 A is emitted toward the light flux combining unit 50 A and the reference mirror 14 A of the first displacement detecting unit 2005 A (described later).
- a first light flux L 1 transmitted through the first light flux dividing unit 2113 A vertically enters a measured member 2 , that is, an incident point P 11 on the first diffraction grating 111 .
- the first light flux L 1 that enters the incident point P 11 on the first diffraction grating 111 is divided by the first diffraction grating 111 into two light fluxes L 1 A and L 1 B respectively having positive and negative orders in the first direction X.
- diffracted light that is diffracted in a positive direction (one side) in a grating vector direction of the first diffraction grating 111 is diffracted light having a positive order
- diffracted light that is diffracted in a negative direction (other side) is diffracted light having a negative order.
- the diffracted light having a positive order becomes object light used in the first displacement detecting unit 2005 A
- the diffracted light having a negative order becomes object light used in the second displacement detecting unit 2005 B.
- a first light flux L 1 A having a positive order in the first light flux L 1 diffracted by the first diffraction grating 111 enters a light flux parallel branch unit 40 A of the first displacement detecting unit 2005 A (described later). Also, a first light flux L 1 B having a negative order in the first light flux L 1 diffracted by the first diffraction grating 111 enters a light flux parallel branch unit 40 B of the second displacement detecting unit 2005 B (described later).
- the first displacement detecting unit 2005 A includes a light receiving unit 7 A, a second diffraction grating 12 A, a reference mirror 14 A, an object mirror 15 A, a first phase plate 17 A, a second phase plate 18 A, a light flux parallel branch unit 40 A, and a light flux combining unit 50 A.
- the light receiving unit 7 A is connected to a first relative positional information outputting unit 2004 A of the relative positional information outputting means 2104 . Then, the light receiving unit 7 A transmits an acquired interference signal to the first relative positional information outputting unit 2004 A.
- the light flux parallel branch unit 40 A of the first displacement detecting unit 2005 A makes a first light flux L 1 A, which is reflected by the object mirror 15 A and passes through the second diffraction grating 12 A, enter an incident point P 12 A different from an incident point P 11 that is a first incident position on the first diffraction grating 111 .
- the incident point P 11 that is a first incident position and the incident point P 12 A that is a second emission position are placed in the first direction X on the measured member 2 .
- the light flux parallel branch unit 40 A moves an outgoing optical path of the first light flux L 1 A from the incident point P 11 to the light flux parallel branch unit 40 A and an incoming optical path thereof from the light flux parallel branch unit 40 A to the incident point P 12 A on the first diffraction grating 111 in parallel in the first direction X in such a manner that these paths do not become identical.
- the first light flux L 1 A that enters the incident point P 12 A on the first diffraction grating 111 is diffracted by the first diffraction grating 111 , superposed with the second light flux L 2 A by the light flux combining unit 50 A, and enters the light receiving unit 7 A.
- the light receiving unit 7 A of the first displacement detecting unit 2005 A acquires an interference signal expressed in the following expression 16.
- A1 is amplitude of interference.
- the second displacement detecting unit 2005 B includes a light receiving unit 7 B, a second diffraction grating 12 B, a reference mirror 14 B, an object mirror 15 B, a first phase plate 17 B, a second phase plate 18 B, a light flux parallel branch unit 40 B, and a light flux combining unit 50 B.
- the light receiving unit 7 B is connected to a second relative positional information outputting unit 2004 B of the relative positional information outputting means 2104 . Then, the light receiving unit 7 B transmits an acquired interference signal to the second relative positional information outputting unit 2004 B.
- the second diffraction grating 12 B, the reference mirror 14 B, the object mirror 15 B, the first phase plate 17 B, the second phase plate 18 B, the light flux parallel branch unit 40 B, and the light flux combining unit 50 B included in the second displacement detecting unit 2005 B are arranged in a manner reversed in the first direction X from those of the first displacement detecting unit 2005 A.
- the light flux parallel branch unit 40 B of the second displacement detecting unit 2005 B makes a first light flux L 1 B, which is reflected by the object mirror 15 B and passes through the second diffraction grating 12 B, enter an incident point P 12 B different from an incident point P 11 that is a first incident position on the first diffraction grating 111 .
- the incident point P 11 that is a first incident position and the incident point P 12 B that is a second emission position are placed in the first direction X on the measured member 2 .
- the light flux parallel branch unit 40 B moves an outgoing optical path of the first light flux L 1 B from the incident point P 11 to the light flux parallel branch unit 40 B and an incoming optical path thereof from the light flux parallel branch unit 40 B to the incident point P 12 B on the first diffraction grating 111 in parallel in the first direction X in such a manner that these path do not become identical.
- the first light flux L 1 B that enters the incident point P 12 B on the first diffraction grating 111 is diffracted by the first diffraction grating 111 , superposed with the second light flux L 2 B by the light flux combining unit 50 B, and enters the light receiving unit 7 B.
- the light receiving unit 7 B of the second displacement detecting unit 2005 B acquires an interference signal expressed in the following expression 17.
- A2 is amplitude of interference.
- the relative positional information outputting means 2104 includes a first relative positional information outputting unit 2004 A, a second relative positional information outputting unit 2004 B, and an arithmetic unit. Also, since the relative positional information outputting means 2104 has a configuration similar to that of the relative positional information outputting means 104 according to the second embodiment, a description thereof is omitted. As described above, a positive/negative of displacement information in the first direction X in the interference signals acquired by the light receiving unit 7 A of the first displacement detecting unit 2005 A and the light receiving unit 7 B of the second displacement detecting unit 2005 B is different.
- the arithmetic unit calculates displacement information of a relative position in the third direction Z of the head 2103 and the measured member 2 by adding the displacement information A from the first relative positional information outputting unit 2004 A and the displacement information B from the second relative positional information outputting unit 2004 B and dividing this by two. Also, the arithmetic unit calculates displacement information in the first direction X of the head 2103 and the measured member 2 by subtracting the displacement information B of the second relative positional information outputting unit 2004 B from the displacement information A of the first relative positional information outputting unit 2004 A and dividing this by two.
- the displacement detecting device 2101 of the ninth embodiment it is possible to output two-dimensional displacement information in the first direction X and the third direction Z similarly to the displacement detecting device 101 according to the second embodiment.
- diffracted light having a positive order in diffracted light diffracted by the first diffraction grating 111 is used in the first displacement detecting unit 2005 A, and diffracted light having a negative order is used in the second displacement detecting unit 2005 B. Accordingly, it is possible to increase output amplitude of an interference signal acquired by the relative positional information outputting means 2104 .
- FIG. 23 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the tenth embodiment.
- FIG. 24 is a schematic configuration view illustrating a configuration of a first displacement detecting unit and a second displacement detecting unit in the displacement detecting device according to the tenth embodiment.
- FIG. 25 is a schematic view illustrating a configuration of a third displacement detecting unit and a fourth displacement detecting unit in the displacement detecting device according to the tenth embodiment.
- a displacement detecting device 2201 is a displacement detecting device that can output three-dimensional displacement information in a first direction X, a third direction Z, and a second direction Y orthogonal to the first direction X and the third direction Z. Then, here, the same sign is assigned to a common part with the displacement detecting device 2001 according to the eighth embodiment, and an overlapped description is omitted.
- a displacement detecting device 2201 includes a measured member 202 in which a first diffraction grating 211 is provided, a head 2203 , and a relative positional information outputting means 2204 .
- the head 2203 and the measured member 202 are configured in a manner relatively movable in three directions that are a first direction X, a second direction Y, and a third direction Z.
- the measured member 202 has a configuration similar to that of the measured member 202 according to the third embodiment, a description thereof is omitted here.
- the head 2203 includes a first displacement detecting unit 2005 A, a second displacement detecting unit 2005 B, a third displacement detecting unit 2005 C, a fourth displacement detecting unit 2005 D, a light source 6 , a lens 16 , a first light flux dividing unit 2213 A, a second light flux dividing unit 2213 B, a third light flux dividing unit 2213 C, and a fourth light flux dividing unit 2213 D.
- the first displacement detecting unit 2005 A is arranged on one side in the first direction X of the head 2203 and the second displacement detecting unit 2005 B is arranged on the other side in the first direction X of the head 2203 .
- the third displacement detecting unit 2005 C is arranged on one side in the second direction Y of the head 2203 and the fourth displacement detecting unit 2005 D is arranged on the other side in the second direction Y of the head 2203 .
- the light source 6 , the lens 16 , the first light flux dividing unit 2213 A, the second light flux dividing unit 2213 B, the third light flux dividing unit 2213 C, and the fourth light flux dividing unit 2213 D are arranged between the first displacement detecting unit 2005 A, the second displacement detecting unit 2005 B, the third displacement detecting unit 2005 C, and the fourth displacement detecting unit 2005 D. That is, the light source 6 , the lens 16 , the first light flux dividing unit 2213 A, the second light flux dividing unit 2213 B, the third light flux dividing unit 2213 C, and the fourth light flux dividing unit 2213 D are arranged in a center part in the first direction X and the second direction Y in the head 2203 .
- Each of the first light flux dividing unit 2213 A, the second light flux dividing unit 2213 B, the third light flux dividing unit 2213 C, and the fourth light flux dividing unit 2213 D includes a semitransparent mirror or a beam splitter.
- Each of the first light flux dividing unit 2213 A, the second light flux dividing unit 2213 B, the third light flux dividing unit 2213 C, and the fourth light flux dividing unit 2213 D divides incident light into two that are reflected light and transmitted light.
- the first light flux dividing unit 2213 A, the second light flux dividing unit 2213 B, the third light flux dividing unit 2213 C, and the fourth light flux dividing unit 2213 D are arranged in order of the first light flux dividing unit 2213 A, the second light flux dividing unit 2213 B, the third light flux dividing unit 2213 C, and the fourth light flux dividing unit 2213 D from a side of the measured member 202 in the third direction Z. That is, the fourth light flux dividing unit 2213 D is arranged on a side of the light source 6 .
- a light flux reflected by the fourth light flux dividing unit 2213 D becomes a second light flux L 2 D that is reference light used in the fourth displacement detecting unit 2005 D.
- the second light flux L 2 D reflected by the fourth light flux dividing unit 2213 D is emitted toward the other side in the second direction Y.
- a light flux combining unit 50 D and a reference mirror 14 D of the fourth displacement detecting unit 2005 D (described later) are arranged on the other side in the second direction Y in the fourth light flux dividing unit 2213 D.
- the second light flux L 2 D is emitted toward the light flux combining unit 50 D and the reference mirror 14 D of the fourth displacement detecting unit 2005 D (described later). Also, light transmitted through the fourth light flux dividing unit 2213 D enters the third light flux dividing unit 2213 C.
- Alight flux reflected by the third light flux dividing unit 2213 C becomes a second light flux L 2 C that is reference light used in the third displacement detecting unit 2005 C.
- the second light flux L 2 C reflected by the third light flux dividing unit 2213 C is emitted toward the one side in the second direction Y.
- a light flux combining unit 50 C and a reference mirror 14 C of the third displacement detecting unit 2005 C are arranged on the one side in the second direction Y in the third light flux dividing unit 2213 C.
- the second light flux L 2 C is emitted toward the light flux combining unit 50 C and the reference mirror 14 C of the third displacement detecting unit 2005 C (described later).
- light transmitted through the third light flux dividing unit 2213 C enters the second light flux dividing unit 2213 B.
- a light flux reflected by the second light flux dividing unit 2213 B becomes a second light flux L 2 B that is reference light used in the second displacement detecting unit 2005 B.
- the second light flux L 2 B reflected by the second light flux dividing unit 2213 B is emitted toward the other side in the first direction X.
- a light flux combining unit 50 B and a reference mirror 14 B of the second displacement detecting unit 2005 B are arranged on the other side in the first direction X of the second light flux dividing unit 2213 B.
- the second light flux L 2 B is emitted toward the light flux combining unit 50 B and the reference mirror 14 B of the second displacement detecting unit 2005 B (described later).
- light transmitted through the second light flux dividing unit 2213 B enters the first light flux dividing unit 2213 A.
- a light flux reflected by the first light flux dividing unit 2213 A becomes a second light flux L 2 A that is reference light used in the first displacement detecting unit 2005 A.
- the second light flux L 2 A reflected by the first light flux dividing unit 2213 A is emitted toward the one side in the first direction X.
- a light flux combining unit 50 A and a reference mirror 14 A of the first displacement detecting unit 2005 A are arranged on the one side in the first direction X of the first light flux dividing unit 2213 A.
- the second light flux L 2 A is emitted toward the light flux combining unit 50 A and the reference mirror 14 A of the first displacement detecting unit 2005 A (described later).
- a first light flux L 1 transmitted through the first light flux dividing unit 2213 A vertically enters the measured member 202 , that is, an incident point P 11 on the first diffraction grating 211 .
- the first light flux L 1 that enters the incident point P 11 on the first diffraction grating 211 is divided by the first diffraction grating 211 into two light fluxes L 1 A and L 1 B respectively having positive and negative orders in the first direction X and two light fluxes L 1 C and L 1 D respectively having positive and negative orders in the second direction Y.
- diffracted light that is diffracted in a positive direction (one side) in a first grating vector direction of the first diffraction grating 211 is diffracted light having a positive order in the first direction X
- diffracted light that is diffracted in a negative direction (other side) is diffracted light having a negative order in the first direction X.
- the diffracted light having the positive order in the first direction X becomes object light used in the first displacement detecting unit 2005 A
- the diffracted light having the negative order in the first direction X becomes object light used in the second displacement detecting unit 2005 B.
- diffracted light that is diffracted in a positive direction (one side) in a second grating vector direction of the first diffraction grating 211 is diffracted light having a positive order in the second direction Y
- diffracted light that is diffracted in a negative direction (other side) is diffracted light having a negative order in the second direction Y.
- the diffracted light having the positive order in the second direction Y becomes object light used in the third displacement detecting unit 2005 C
- the diffracted light having the negative order in the second direction Y becomes object light used in the fourth displacement detecting unit 2005 D.
- a first light flux L 1 A having a positive order in the first direction X in the first light flux L 1 diffracted by the first diffraction grating 211 enters a light flux parallel branch unit 40 A of the first displacement detecting unit 2005 A. Also, a first light flux L 1 B having a negative order in the first direction X in the first light flux L 1 diffracted by the first diffraction grating 211 enters a light flux parallel branch unit 40 B of the second displacement detecting unit 2005 B.
- a first light flux L 1 C having a positive order in the second direction Yin the first light flux L 1 diffracted by the first diffraction grating 211 enters a light flux parallel branch unit 40 C of the third displacement detecting unit 2005 C (described later).
- a first light flux L 1 D having a negative order in the second direction Yin the first light flux L 1 diffracted by the first diffraction grating 211 enters a light flux parallel branch unit 40 D of the fourth displacement detecting unit 2005 D.
- first displacement detecting unit 2005 A and the second displacement detecting unit 2005 B respectively have configurations similar to those of the first displacement detecting unit 2005 A and the second displacement detecting unit 2005 B according to the ninth embodiment, a description thereof is omitted.
- a light receiving unit 7 A of the first displacement detecting unit 2005 A acquires an interference signal expressed in the following expression 18.
- A1 is amplitude of interference.
- a light receiving unit 7 B of the second displacement detecting unit 2005 B acquires an interference signal expressed in the following expression 19.
- A2 is amplitude of interference.
- the third displacement detecting unit 2005 C includes a light receiving unit 7 C, a second diffraction grating 12 C, a reference mirror 14 C, an object mirror 15 C, a first phase plate 17 C, a second phase plate 18 C, a light flux parallel branch unit 40 C, and a light flux combining unit 50 C. Also, a grating vector direction of the second diffraction grating 12 C is on a plane formed by the second direction Y and the third direction Z.
- the light receiving unit 7 C is connected to a third relative positional information outputting unit 2004 C of the relative positional information outputting means 2204 . Then, the light receiving unit 7 C transmits an acquired interference signal to the third relative positional information outputting unit 2004 C.
- the light flux parallel branch unit 40 C of the third displacement detecting unit 2005 C makes a first light flux L 1 C, which is reflected by the object mirror 15 C and passes through the second diffraction grating 12 C, enter an incident point P 12 C different from an incident point P 11 that is a first incident position on the first diffraction grating 211 .
- the incident point P 11 that is a first incident position and the incident point P 12 C that is a second emission position are placed in the second direction Y on the measured member 202 .
- the light flux parallel branch unit 40 C moves an outgoing optical path of the first light flux L 1 C from the incident point P 11 to the light flux parallel branch unit 40 C and an incoming optical path thereof from the light flux parallel branch unit 40 C to the incident point P 12 C on the first diffraction grating 211 in parallel in the second direction Y in such a manner that these paths do not become identical.
- the first light flux L 1 C that enters the incident point P 12 C on the first diffraction grating 211 is diffracted by the first diffraction grating 211 , superposed with a second light flux L 2 C by the light flux combining unit 50 C, and enters the light receiving unit 7 C.
- the light receiving unit 7 C of the third displacement detecting unit 2005 C acquires an interference signal expressed in the following expression 20.
- A3 is amplitude of interference.
- y indicates a movement amount of the first diffraction grating 211 , that is, a relative displacement amount in the second direction Y of the head 2203 and the measured member 202 .
- the fourth displacement detecting unit 2005 D includes a light receiving unit 7 D, a second diffraction grating 12 D, a reference mirror 14 D, an object mirror 15 D, a first phase plate 17 D, a second phase plate 18 D, a light flux parallel branch unit 40 D, and a light flux combining unit 50 D. Also, a grating vector direction of the second diffraction grating 12 D is on a plane formed by the second direction Y and the third direction Z.
- the light receiving unit 7 D is connected to a fourth relative positional information outputting unit 2004 D of the relative positional information outputting means 2204 . Then, the light receiving unit 7 D transmits an acquired interference signal to the fourth relative positional information outputting unit 2004 D.
- the second diffraction grating 12 D, the reference mirror 14 D, the object mirror 15 D, the first phase plate 17 D, the second phase plate 18 D, the light flux parallel branch unit 40 D, and the light flux combining unit 50 D that are included in the fourth displacement detecting unit 2005 D are arranged in a manner reversed in the second direction Y from those of the third displacement detecting unit 2005 C.
- the light flux parallel branch unit 40 D of the fourth displacement detecting unit 2005 D makes a first light flux L 1 D, which is reflected by the object mirror 15 D and passes through the second diffraction grating 12 D, enter an incident point P 12 D different from an incident point P 11 that is a first incident position on the first diffraction grating 211 .
- the incident point P 11 that is a first incident position and the incident point P 12 D that is a second emission position are placed in the second direction Y on the measured member 202 .
- the light flux parallel branch unit 40 D moves an outgoing optical path of the first light flux L 1 D from the incident point P 11 to the light flux parallel branch unit 40 D and an incoming optical path thereof from the light flux parallel branch unit 40 D to the incident point P 12 D on the first diffraction grating 211 in parallel in the second direction Y in such a manner that these paths do not become identical.
- the first light flux L 1 D that enters the incident point P 12 D on the first diffraction grating 211 is diffracted by the first diffraction grating 211 , superposed with a second light flux L 2 D by the light flux combining unit 50 D, and enters the light receiving unit 7 D.
- the light receiving unit 7 D of the fourth displacement detecting unit 2005 D acquires an interference signal expressed in the following expression 21.
- A4 is amplitude of interference.
- the relative positional information outputting means 2204 includes a first relative positional information outputting unit 2004 A, a second relative positional information outputting unit 2004 B, a third relative positional information outputting unit 2004 C, a fourth relative positional information outputting unit 2004 D, and an arithmetic unit. Since the relative positional information outputting means 2204 has a configuration similar to that of the relative positional information outputting means 204 according to the third embodiment, a description thereof is omitted.
- a positive/negative of displacement information in the first direction X in the interference signals acquired by the light receiving unit 7 A of the first displacement detecting unit 2005 A and the light receiving unit 7 B of the second displacement detecting unit 2005 B is different.
- a positive/negative of displacement information in the second direction Y in the interference signals acquired by the light receiving unit 7 C of the third displacement detecting unit 2005 C and the light receiving unit 7 D of the fourth displacement detecting unit 2005 D is different.
- the arithmetic unit calculates displacement information of a relative position in the third direction Z of the head 2203 and the measured member 202 by adding the displacement information A, B, C, and D of all of the first relative positional information outputting unit 2004 A, the second relative positional information outputting unit 2004 B, the third relative positional information outputting unit 2004 C, and the fourth relative positional information outputting unit 2004 D and dividing this by four.
- the arithmetic unit calculates displacement information in the first direction X of the head 2203 and the measured member 202 by subtracting the displacement information B of the second relative positional information outputting unit 2004 B from the displacement information A of the first relative positional information outputting unit 2004 A and dividing this by two.
- the arithmetic unit calculates displacement information in the second direction Y of the head 2203 and the measured member 202 by subtracting the displacement information D of the fourth relative positional information outputting unit 2004 D from the displacement information C of the third relative positional information outputting unit 2004 C and dividing this by two.
- the displacement detecting device 2201 of the tenth embodiment it is possible to output three-dimensional displacement information in the first direction X, the second direction Y, and the third direction Z.
- first grating vector direction and the second grating vector direction of the first diffraction grating 211 are orthogonal to each other.
- a first grating vector direction and a second grating vector direction may not be orthogonal to each other and only need to intersect with each other on a measured surface 202 a of the measured member 202 .
- the first displacement detecting unit 2005 A and the second displacement detecting unit 2005 B are arranged in the first grating vector direction
- the third displacement detecting unit 2005 C and the fourth displacement detecting unit 2005 D are arranged in the second grating vector direction.
- the displacement detecting device 2201 of the tenth embodiment not only diffracted light having a positive order in the first direction X in diffracted light, which is diffracted by the first diffraction grating 211 , but also diffracted light having a negative order in the first direction X are used. Moreover, diffracted light having a positive order and diffracted light having a negative order in the second direction Y are used. Accordingly, it is possible to increase output amplitude of an interference signal acquired by the relative positional information outputting means 2204 .
- FIG. 26 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the eleventh embodiment
- FIG. 27 is a view for describing a relationship between incident angles and diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the eleventh embodiment.
- a reflection-type diffraction grating is used as a second diffraction grating in a displacement detecting device 2501 according to the eleventh embodiment.
- the displacement detecting device 2501 according to the eleventh embodiment is different from the displacement detecting device 2001 according to the eighth embodiment in a point that a reflection-type diffraction grating is used as a second diffraction grating.
- the same sign is assigned to a common part with the displacement detecting device 2001 according to the eighth embodiment, and an overlapped description is omitted.
- the displacement detecting device 2501 includes a head 2503 , a measured member 2 in which a first diffraction grating 11 is provided, and a relative positional information outputting means 2504 .
- the head 2503 includes a displacement detecting unit 2505 , a light source 6 , and a light receiving unit 7 provided in the displacement detecting unit 2505 .
- the displacement detecting unit 2505 includes a second diffraction grating 2512 , a light flux dividing unit 2013 , a first phase plate 17 , a second phase plate 18 , a reference mirror 14 , a light flux parallel branch unit 40 , and a light flux combining unit 50 .
- the light flux dividing unit 2013 , the reference mirror 14 , the first phase plate 17 , the second phase plate 18 , the light flux parallel branch unit 40 , and the light flux combining unit 50 have configurations similar to those of the displacement detecting device 2001 according to the eighth embodiment, a description thereof is omitted.
- the first phase plate 17 is arranged between the light flux parallel branch unit 40 and the second diffraction grating 2512 .
- the second diffraction grating 2512 is a reflection-type diffraction grating that reflects and diffracts an incident first light flux L 1 . Then, the second diffraction grating 2512 reflects and diffracts a first light flux L 1 , which is diffracted by the first diffraction grating 11 , toward the first diffraction grating 11 through the light flux parallel branch unit 40 again.
- the second diffraction grating 2512 functions as an object light reflecting member. As a result, it becomes unnecessary to newly provide a mirror, a prism, or the like as an object light reflecting member and it is possible to reduce the number of components.
- an optical path length from the incident point P 21 on the first diffraction grating 11 to the incident point Q 2 on the second diffraction grating 2512 through the light flux parallel branch unit 40 becomes longer for a length M 1 than an optical path length from the incident point P 11 on the first diffraction grating 11 to the incident point Q 1 on the second diffraction grating 2512 through the light flux parallel branch unit 40 of when the first diffraction grating 11 is not moved in the third direction Z.
- an optical path length of the first light flux L 1 becomes constant even in a case where the first diffraction grating 11 is moved in the third direction Z. Accordingly, it is possible to make the optical path length of the first light flux L 1 constant even when the first diffraction grating 11 is moved in the third direction Z.
- FIG. 28 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the twelfth embodiment
- FIG. 29 is a view for describing a relationship between incident angles and diffraction angles of a first diffraction grating and a second diffraction grating in the displacement detecting device according to the twelfth embodiment.
- a reflection-type diffraction grating is used as a second diffraction grating in a displacement detecting device 2601 according to the twelfth embodiment.
- the same sign is assigned to a common part with the displacement detecting device 2001 according to the eighth embodiment, and an overlapped description is omitted.
- the displacement detecting device 2601 includes a head 2603 , a measured member 2 in which a first diffraction grating 11 is provided, and a relative positional information outputting means 2604 .
- the head 2603 includes a displacement detecting unit 2605 , a light source 6 , and a light receiving unit 7 provided in the displacement detecting unit 2605 .
- the displacement detecting unit 2605 includes a second diffraction grating 2612 , a light flux dividing unit 2013 , a first phase plate 17 , a second phase plate 18 , a reference mirror 14 , a light flux parallel branch unit 40 , a light flux combining unit 50 , and an object mirror 2615 .
- the light flux dividing unit 2013 , the reference mirror 14 , the first phase plate 17 , the second phase plate 18 , the light flux parallel branch unit 40 , and the light flux combining unit 50 have configurations similar to those of the displacement detecting device 2001 according to the eighth embodiment, a description thereof is omitted.
- the first phase plate 17 is arranged between the light flux parallel branch unit 40 and the second diffraction grating 2612 or between the second diffraction grating 2612 and the object mirror 2615 .
- the second diffraction grating 2612 is a reflection-type diffraction grating that reflects and diffracts an incident first light flux L 1 . Then, the second diffraction grating 2612 reflects and diffracts the first light flux L 1 , which is diffracted by the first diffraction grating 11 , toward the object mirror 2615 . The object mirror 2615 reflects the incident first light flux L 1 toward the second diffraction grating 2612 again.
- the object mirror 2615 is added to the displacement detecting device 2501 according to the eleventh embodiment.
- the object mirror 2615 it is possible to easily perform operation of making an optical path length of a first light flux L 1 and an optical path length of a second light flux L 2 identical.
- an optical path length from the incident point P 21 on the first diffraction grating 11 to the incident point Q 2 on the second diffraction grating 2612 through the light flux parallel branch unit 40 becomes longer for a length M 1 than an optical path length from the incident point P 11 on the first diffraction grating 11 to the incident point Q 1 on the second diffraction grating 2612 through the light flux parallel branch unit 40 of when the first diffraction grating 11 is not moved in the third direction Z.
- a distance from the incident point Q 2 on the second diffraction grating 2612 to the object mirror 2615 becomes longer for a length M 2 than an optical path length from the incident point Q 1 on the second diffraction grating 2612 to the object mirror 2615 of when the first diffraction grating 11 is not moved in the third direction Z.
- each of the second diffraction grating 2512 according to the eleventh embodiment and the second diffraction grating 2612 according to the twelfth embodiment for example, a so-called blazed grating in which a sectional shape of a groove is formed in a serrated shape is preferably used. With this arrangement, it is possible to improve diffraction efficiency with respect to a specific wavelength.
- FIG. 30 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the thirteenth embodiment.
- a displacement detecting device 2701 according to the thirteenth embodiment is the displacement detecting device 2001 according to the eighth embodiment to which device an optical path correction member is provided.
- the same sign is assigned to a common part with the displacement detecting device 2001 according to the eighth embodiment, and an overlapped description is omitted.
- the displacement detecting device 2701 includes a head 2703 , a measured member 2 in which a first diffraction grating 11 is provided, and a relative positional information outputting means 2704 .
- the head 2703 includes a displacement detecting unit 2705 , a light source 6 , and a light receiving unit 7 provided in the displacement detecting unit 2705 .
- the displacement detecting unit 2705 includes a second diffraction grating 12 , a light flux dividing unit 2013 , a reference mirror 14 , an object mirror 15 , a first phase plate 17 , a second phase plate 18 , a light flux parallel branch unit 40 , a light flux combining unit 50 , a correction diffraction grating 710 indicating an optical path correction member.
- the second diffraction grating 12 , the light flux dividing unit 2013 , the reference mirror 14 , the object mirror 15 , the first phase plate 17 , the second phase plate 18 , the light flux parallel branch unit 40 , and the light flux combining unit 50 have configurations similar to those of the displacement detecting device 2001 according to the eighth embodiment, a description thereof is omitted.
- the correction diffraction grating 710 is arranged between the light flux combining unit 50 and the light receiving unit 7 .
- the correction diffraction grating 710 is a transmission-type diffraction grating that transmits light and diffracts the transmitted light.
- the correction diffraction grating 710 diffracts a first light flux L 1 and a second light flux L 2 that pass through the light flux combining unit 50 and that are superposed with each other by the light flux combining unit 50 , and makes these enter the light receiving unit 7 .
- the second diffraction grating 12 is arranged in such a manner that a plane thereof is inclined in the third direction Z.
- a grating vector direction of the correction diffraction grating 710 is on a plane formed by a first direction X and a third direction Z.
- the correction diffraction grating 710 diffracts the first light flux L 1 . In such a manner, it is possible to correct a change in the optical path length of the first light flux L 1 by diffraction by the correction diffraction grating 710 .
- the second light flux L 2 is not influenced by a tilt of the first diffraction grating 11 and constantly follows a certain optical path, an optical path length thereof is not changed.
- a position where the second light flux L 2 enters the correction diffraction grating 710 is not changed.
- the correction diffraction grating 710 does not influence the optical path length of the second light flux L 2 .
- the displacement detecting device 2701 of the thirteenth embodiment it is possible to correct the optical path length of the first light flux L 1 by the correction diffraction grating 710 even when the measured member 2 in which the first diffraction grating 11 is provided is tilted. As a result, it is possible to perform highly accurate measurement even when the measured member 2 is tilted.
- FIG. 31 is a schematic configuration view illustrating a configuration of the displacement detecting device according to the fourteenth embodiment.
- a displacement detecting device 2801 according to the fourteenth embodiment is the displacement detecting device 2001 according to the eighth embodiment to which device an isolator is provided.
- the same sign is assigned to a common part with the displacement detecting device 2001 according to the eighth embodiment, and an overlapped description is omitted.
- the displacement detecting device 2801 includes a head 2803 , a measured member 2 in which a first diffraction grating 11 is provided, and a relative positional information outputting means 2004 .
- the head 2803 includes a displacement detecting unit 2805 , a light source 6 , and a light receiving unit 7 provided in the displacement detecting unit 2805 .
- An isolator 2811 is provided in the displacement detecting unit 2805 . Note that since the other configurations of the displacement detecting unit 2805 are similar to those of the displacement detecting unit 2005 according to the eighth embodiment, a description thereof is omitted.
- the isolator 2811 is arranged between the lens 16 and the light flux dividing unit 2013 between the light source 6 and the light flux dividing unit 2013 .
- the isolator 2811 is an optical element that passes light in one direction and that bocks light in the other direction.
- a direction of the linearly-polarized light is changed by the isolator 2811 .
- the light L the direction of which is changed by the isolator 2811 is preferably distributed at 1 : 1 by the light flux dividing unit 2013 .
- light emitted from a light source may be supplied through a space not only in gas but also in liquid or a vacuum.
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Abstract
Description
sin θ=λ/d R [Expression 1]
θ=sin−1(λ/d R) [Expression 2]
sin ϕ+sin ϕ=λ/d T [Expression 3]
ϕ=sin−1(λ/2d T) [Expression 4]
−cos(ϕ+θ)/cos ϕ+{sin(ϕ+θ)−cos(ϕ+θ)tan ϕ} sin ϕ=1 [Expression 5]
sin ϕa+sin ϕb=nλ/d T [Expression 6]
A1×cos(2K1x+2×B×K2z+δ) [Expression 7]
A2×cos(−2K1x+2×B×K2z+δ) [Expression 8]
A1×cos(2K1x+2×B×K2z+δ) [Expression 9]
A2×cos(−2K1x+2×B×K2z+δ) [Expression 10]
A3×cos(2K1y+2×B×K2z+δ) [Expression 11]
A4×cos(−2K1y+2×B×K2z+δ) [Expression 12]
−cos(θ1+θ+θR)/cos θ1+{sin(θ1+θ+θR)−cos(θ1+θ+θR)tan θ1} sin θ2=1 [Expression 13]
A×cos(2K 1 X+2K 1 Z tan θR+2K 2 BZ+δ)
B={sin(θ1+θ+θR)−cos(θ1+θ+θR)tan θ1}/cos θR [Expression 14]
−cos(ϕ+θ)/cos ϕ+{sin(ϕ+θ)−cos(ϕ+θ)tan ϕ)} sin ϕ=1 [Expression 15]
A1×cos(2K1x+2×B×K2z+δ) [Expression 16]
A2×cos(−2K1x+2×B×K2z+δ) [Expression 17]
A1×cos(2K1×+2×B×K2z+δ) [Expression 18]
A2×cos(−2K1x+2×B×K2z+δ) [Expression 19]
A3×cos(2K1y+2×B×K2z+δ) [Expression 20]
A4×cos(−2K1y+2×B×K2z+δ) [Expression 21]
−cos(ϕ1+θ)/cos ϕ1+{sin(ϕ1+θ)−cos(ϕ1+θ)tan ϕ1} sin ϕ2=1 [Expression 22]
- 1 displacement detecting device
- 2 measured member
- 2 a measured surface
- 3 head
- 4 relative positional information outputting means
- 5 displacement detecting unit
- 6 light source
- 7 light receiving unit
- 11 first diffraction grating
- 12 second diffraction grating
- 13 light flux dividing unit (light flux combining unit)
- 14 reference mirror (reference reflecting member)
- 15 object mirror (object reflecting member)
- 17 first phase plate
- 18 second phase plate
- L1 first light flux
- L2 second light flux
Claims (18)
−cos(θ1+θ+θR)/cos θ1+{sin(θ1+θ+θR)−cos(θ1+θ+θR)tan θ1} sin θ2=1 [Expression]
−cos(ϕ1+θ)/cos ϕ1+{sin(ϕ1+θ)−cos(ϕ1+θ)tan ϕ1} sin ϕ2=1 [Expression]
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| JP2017-101475 | 2017-05-23 | ||
| JP2017101475A JP6786442B2 (en) | 2017-05-23 | 2017-05-23 | Displacement detector |
| JP2017-162764 | 2017-08-25 | ||
| JP2017162764A JP2019038079A (en) | 2017-08-25 | 2017-08-25 | Holding system |
| JP2017-162746 | 2017-08-25 |
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| CN112097650B (en) * | 2020-09-11 | 2022-04-26 | 中国科学院长春光学精密机械与物理研究所 | Heterodyne grating displacement measuring method |
| CN113819846B (en) * | 2021-09-18 | 2022-05-31 | 中国科学院长春光学精密机械与物理研究所 | Conical surface diffraction type grating displacement measuring device and measuring method |
| CN117948897B (en) * | 2024-03-27 | 2024-06-04 | 中国科学院长春光学精密机械与物理研究所 | A hybrid displacement measuring device |
Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH0589480A (en) | 1991-09-26 | 1993-04-09 | Sony Magnescale Inc | Displacement detection device |
| US20120287441A1 (en) * | 2011-05-11 | 2012-11-15 | Mori Seiki Co., Ltd. | Displacement Detecting Device |
| US20130250307A1 (en) * | 2011-10-26 | 2013-09-26 | Mori Seiki Co., Ltd. | Displacement Detecting Device |
| US20160109216A1 (en) * | 2014-10-21 | 2016-04-21 | Dr. Johannes Heidenhain Gmbh | Optical position measuring device |
| US20180283852A1 (en) * | 2014-11-13 | 2018-10-04 | Koh Young Technology Inc. | Three-dimensional shape measuring apparatus using diffraction grating |
-
2018
- 2018-05-15 US US15/979,645 patent/US10451401B2/en active Active
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH0589480A (en) | 1991-09-26 | 1993-04-09 | Sony Magnescale Inc | Displacement detection device |
| US20120287441A1 (en) * | 2011-05-11 | 2012-11-15 | Mori Seiki Co., Ltd. | Displacement Detecting Device |
| US20130250307A1 (en) * | 2011-10-26 | 2013-09-26 | Mori Seiki Co., Ltd. | Displacement Detecting Device |
| US20160109216A1 (en) * | 2014-10-21 | 2016-04-21 | Dr. Johannes Heidenhain Gmbh | Optical position measuring device |
| US20180283852A1 (en) * | 2014-11-13 | 2018-10-04 | Koh Young Technology Inc. | Three-dimensional shape measuring apparatus using diffraction grating |
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